EP1898912A1 - Synergistic modulation of flt3 kinase using a flt3 inhibitor and a farnesyl transferase inhibitor - Google Patents
Synergistic modulation of flt3 kinase using a flt3 inhibitor and a farnesyl transferase inhibitorInfo
- Publication number
- EP1898912A1 EP1898912A1 EP06784682A EP06784682A EP1898912A1 EP 1898912 A1 EP1898912 A1 EP 1898912A1 EP 06784682 A EP06784682 A EP 06784682A EP 06784682 A EP06784682 A EP 06784682A EP 1898912 A1 EP1898912 A1 EP 1898912A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- 6alkyl
- subject
- flt3
- administering
- effective amount
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
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- RCINICONZNJXQF-MZXODVADSA-N taxol Chemical compound O([C@@H]1[C@@]2(C[C@@H](C(C)=C(C2(C)C)[C@H](C([C@]2(C)[C@@H](O)C[C@H]3OC[C@]3([C@H]21)OC(C)=O)=O)OC(=O)C)OC(=O)[C@H](O)[C@@H](NC(=O)C=1C=CC=CC=1)C=1C=CC=CC=1)O)C(=O)C1=CC=CC=C1 RCINICONZNJXQF-MZXODVADSA-N 0.000 description 1
- 229950002757 teoclate Drugs 0.000 description 1
- JEHMHLUAQNZYHY-IUCAKERBSA-N tert-butyl (2s,6s)-2,6-dimethyl-4-(trifluoromethylsulfonyloxy)-3,6-dihydro-2h-pyridine-1-carboxylate Chemical compound C[C@H]1CC(OS(=O)(=O)C(F)(F)F)=C[C@H](C)N1C(=O)OC(C)(C)C JEHMHLUAQNZYHY-IUCAKERBSA-N 0.000 description 1
- ADBYGASBXODWTQ-UHFFFAOYSA-N tert-butyl 2,6-dimethyl-4-oxopiperidine-1-carboxylate Chemical compound CC1CC(=O)CC(C)N1C(=O)OC(C)(C)C ADBYGASBXODWTQ-UHFFFAOYSA-N 0.000 description 1
- XFHDOSGLKQJYLP-UHFFFAOYSA-N tert-butyl 2,6-dimethylpiperidine-1-carboxylate Chemical compound CC1CCCC(C)N1C(=O)OC(C)(C)C XFHDOSGLKQJYLP-UHFFFAOYSA-N 0.000 description 1
- ZAQYBHOQALRPSJ-UHFFFAOYSA-N tert-butyl 2-[4-[4-[(5-cyano-1h-imidazole-2-carbonyl)amino]-3-(cyclohexen-1-yl)phenyl]piperidin-1-yl]acetate Chemical compound C1CN(CC(=O)OC(C)(C)C)CCC1C(C=C1C=2CCCCC=2)=CC=C1NC(=O)C1=NC(C#N)=CN1 ZAQYBHOQALRPSJ-UHFFFAOYSA-N 0.000 description 1
- BNWCETAHAJSBFG-UHFFFAOYSA-N tert-butyl 2-bromoacetate Chemical compound CC(C)(C)OC(=O)CBr BNWCETAHAJSBFG-UHFFFAOYSA-N 0.000 description 1
- XTDXZSGSIMLARD-UHFFFAOYSA-N tert-butyl 2h-pyridine-1-carboxylate Chemical compound CC(C)(C)OC(=O)N1CC=CC=C1 XTDXZSGSIMLARD-UHFFFAOYSA-N 0.000 description 1
- RIFXIGDBUBXKEI-UHFFFAOYSA-N tert-butyl 3-oxopiperidine-1-carboxylate Chemical compound CC(C)(C)OC(=O)N1CCCC(=O)C1 RIFXIGDBUBXKEI-UHFFFAOYSA-N 0.000 description 1
- UOUFRTFWWBCVPV-UHFFFAOYSA-N tert-butyl 4-(2,4-dioxo-1H-thieno[3,2-d]pyrimidin-3-yl)piperidine-1-carboxylate Chemical compound CC(C)(C)OC(=O)N1CCC(CC1)n1c(=O)[nH]c2ccsc2c1=O UOUFRTFWWBCVPV-UHFFFAOYSA-N 0.000 description 1
- ZBFXJOSHTHEKTB-UHFFFAOYSA-N tert-butyl 4-(4-amino-3-bromophenyl)-2,6-dimethylpiperidine-1-carboxylate Chemical compound C1C(C)N(C(=O)OC(C)(C)C)C(C)CC1C1=CC=C(N)C(Br)=C1 ZBFXJOSHTHEKTB-UHFFFAOYSA-N 0.000 description 1
- ATHDMVJLLBLTME-UHFFFAOYSA-N tert-butyl 4-(4-aminophenyl)-2,6-dimethylpiperidine-1-carboxylate Chemical compound C1C(C)N(C(=O)OC(C)(C)C)C(C)CC1C1=CC=C(N)C=C1 ATHDMVJLLBLTME-UHFFFAOYSA-N 0.000 description 1
- GVYQZVXLKNRDOV-UHFFFAOYSA-N tert-butyl 4-[4-amino-3-(4-methylcyclohexen-1-yl)phenyl]piperidine-1-carboxylate Chemical compound C1C(C)CCC(C=2C(=CC=C(C=2)C2CCN(CC2)C(=O)OC(C)(C)C)N)=C1 GVYQZVXLKNRDOV-UHFFFAOYSA-N 0.000 description 1
- KIXWFOUVOQUBIW-UHFFFAOYSA-N tert-butyl 4-[4-amino-3-(cyclohexen-1-yl)phenyl]-2,6-dimethylpiperidine-1-carboxylate Chemical compound C1C(C)N(C(=O)OC(C)(C)C)C(C)CC1C1=CC=C(N)C(C=2CCCCC=2)=C1 KIXWFOUVOQUBIW-UHFFFAOYSA-N 0.000 description 1
- XLOIPFQSYISASC-UHFFFAOYSA-N tert-butyl 4-[4-amino-3-(cyclopenten-1-yl)phenyl]piperidine-1-carboxylate Chemical compound C1CN(C(=O)OC(C)(C)C)CCC1C1=CC=C(N)C(C=2CCCC=2)=C1 XLOIPFQSYISASC-UHFFFAOYSA-N 0.000 description 1
- IGYUUOODUQUIOM-UHFFFAOYSA-N tert-butyl 5-[5-(1-acetylpiperidin-4-yl)-2-[[4-cyano-1-(2-trimethylsilylethoxymethyl)imidazole-2-carbonyl]amino]phenyl]-3,6-dihydro-2h-pyridine-1-carboxylate Chemical compound C1CN(C(=O)C)CCC1C(C=C1C=2CN(CCC=2)C(=O)OC(C)(C)C)=CC=C1NC(=O)C1=NC(C#N)=CN1COCC[Si](C)(C)C IGYUUOODUQUIOM-UHFFFAOYSA-N 0.000 description 1
- MRAWTZVWYYXGRT-UHFFFAOYSA-N tert-butyl 5-[5-(1-acetylpiperidin-4-yl)-2-aminophenyl]-3,6-dihydro-2h-pyridine-1-carboxylate Chemical compound C1CN(C(=O)C)CCC1C1=CC=C(N)C(C=2CN(CCC=2)C(=O)OC(C)(C)C)=C1 MRAWTZVWYYXGRT-UHFFFAOYSA-N 0.000 description 1
- 125000000999 tert-butyl group Chemical group [H]C([H])([H])C(*)(C([H])([H])[H])C([H])([H])[H] 0.000 description 1
- VROQYSKALGJGCW-UHFFFAOYSA-N tert-butyl n-[1-[4-[4-[[4-cyano-1-(2-trimethylsilylethoxymethyl)imidazole-2-carbonyl]amino]-3-(cyclohexen-1-yl)phenyl]piperidin-1-yl]-2-methyl-1-oxopropan-2-yl]carbamate Chemical compound C1CN(C(=O)C(C)(C)NC(=O)OC(C)(C)C)CCC1C(C=C1C=2CCCCC=2)=CC=C1NC(=O)C1=NC(C#N)=CN1COCC[Si](C)(C)C VROQYSKALGJGCW-UHFFFAOYSA-N 0.000 description 1
- FQFILJKFZCVHNH-UHFFFAOYSA-N tert-butyl n-[3-[(5-bromo-2-chloropyrimidin-4-yl)amino]propyl]carbamate Chemical compound CC(C)(C)OC(=O)NCCCNC1=NC(Cl)=NC=C1Br FQFILJKFZCVHNH-UHFFFAOYSA-N 0.000 description 1
- JTFJPZUTHAZKCK-UHFFFAOYSA-N tert-butyl n-[4-[4-[4-[(5-cyano-1h-imidazole-2-carbonyl)amino]-3-(cyclohexen-1-yl)phenyl]piperidin-1-yl]-2-methyl-4-oxobutan-2-yl]carbamate Chemical compound C1CN(C(=O)CC(C)(C)NC(=O)OC(C)(C)C)CCC1C(C=C1C=2CCCCC=2)=CC=C1NC(=O)C1=NC(C#N)=CN1 JTFJPZUTHAZKCK-UHFFFAOYSA-N 0.000 description 1
- YBRBMKDOPFTVDT-UHFFFAOYSA-N tert-butylamine Chemical compound CC(C)(C)N YBRBMKDOPFTVDT-UHFFFAOYSA-N 0.000 description 1
- 125000005931 tert-butyloxycarbonyl group Chemical group [H]C([H])([H])C(OC(*)=O)(C([H])([H])[H])C([H])([H])[H] 0.000 description 1
- CIHOLLKRGTVIJN-UHFFFAOYSA-N tert‐butyl hydroperoxide Chemical compound CC(C)(C)OO CIHOLLKRGTVIJN-UHFFFAOYSA-N 0.000 description 1
- 238000012360 testing method Methods 0.000 description 1
- WHRNULOCNSKMGB-UHFFFAOYSA-N tetrahydrofuran thf Chemical compound C1CCOC1.C1CCOC1 WHRNULOCNSKMGB-UHFFFAOYSA-N 0.000 description 1
- WROMPOXWARCANT-UHFFFAOYSA-N tfa trifluoroacetic acid Chemical compound OC(=O)C(F)(F)F.OC(=O)C(F)(F)F WROMPOXWARCANT-UHFFFAOYSA-N 0.000 description 1
- OVRJVKCZJCNSOW-UHFFFAOYSA-N thian-4-one Chemical compound O=C1CCSCC1 OVRJVKCZJCNSOW-UHFFFAOYSA-N 0.000 description 1
- 125000000335 thiazolyl group Chemical group 0.000 description 1
- 150000003568 thioethers Chemical class 0.000 description 1
- 150000003573 thiols Chemical class 0.000 description 1
- BRNULMACUQOKMR-UHFFFAOYSA-N thiomorpholine Chemical group C1CSCCN1 BRNULMACUQOKMR-UHFFFAOYSA-N 0.000 description 1
- 229960001196 thiotepa Drugs 0.000 description 1
- 210000001519 tissue Anatomy 0.000 description 1
- JOXIMZWYDAKGHI-UHFFFAOYSA-N toluene-4-sulfonic acid Chemical compound CC1=CC=C(S(O)(=O)=O)C=C1 JOXIMZWYDAKGHI-UHFFFAOYSA-N 0.000 description 1
- 125000003944 tolyl group Chemical group 0.000 description 1
- 229940044693 topoisomerase inhibitor Drugs 0.000 description 1
- 229960005026 toremifene Drugs 0.000 description 1
- XFCLJVABOIYOMF-QPLCGJKRSA-N toremifene Chemical compound C1=CC(OCCN(C)C)=CC=C1C(\C=1C=CC=CC=1)=C(\CCCl)C1=CC=CC=C1 XFCLJVABOIYOMF-QPLCGJKRSA-N 0.000 description 1
- 238000010361 transduction Methods 0.000 description 1
- 230000026683 transduction Effects 0.000 description 1
- 238000001890 transfection Methods 0.000 description 1
- 238000000844 transformation Methods 0.000 description 1
- 230000005945 translocation Effects 0.000 description 1
- BDTOTMBOHYUNSQ-UHFFFAOYSA-N triazole-1-carboxylic acid Chemical compound OC(=O)N1C=CN=N1 BDTOTMBOHYUNSQ-UHFFFAOYSA-N 0.000 description 1
- ITMCEJHCFYSIIV-UHFFFAOYSA-M triflate Chemical compound [O-]S(=O)(=O)C(F)(F)F ITMCEJHCFYSIIV-UHFFFAOYSA-M 0.000 description 1
- 125000005951 trifluoromethanesulfonyloxy group Chemical group 0.000 description 1
- UCPYLLCMEDAXFR-UHFFFAOYSA-N triphosgene Chemical compound ClC(Cl)(Cl)OC(=O)OC(Cl)(Cl)Cl UCPYLLCMEDAXFR-UHFFFAOYSA-N 0.000 description 1
- 238000001665 trituration Methods 0.000 description 1
- 125000002948 undecyl group Chemical group [H]C([*])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])C([H])([H])[H] 0.000 description 1
- 150000003672 ureas Chemical class 0.000 description 1
- 229910052725 zinc Inorganic materials 0.000 description 1
- 239000011701 zinc Substances 0.000 description 1
Classifications
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K45/00—Medicinal preparations containing active ingredients not provided for in groups A61K31/00 - A61K41/00
- A61K45/06—Mixtures of active ingredients without chemical characterisation, e.g. antiphlogistics and cardiaca
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/33—Heterocyclic compounds
- A61K31/395—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins
- A61K31/435—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins having six-membered rings with one nitrogen as the only ring hetero atom
- A61K31/44—Non condensed pyridines; Hydrogenated derivatives thereof
- A61K31/4427—Non condensed pyridines; Hydrogenated derivatives thereof containing further heterocyclic ring systems
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/33—Heterocyclic compounds
- A61K31/395—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins
- A61K31/435—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins having six-membered rings with one nitrogen as the only ring hetero atom
- A61K31/44—Non condensed pyridines; Hydrogenated derivatives thereof
- A61K31/445—Non condensed piperidines, e.g. piperocaine
- A61K31/4523—Non condensed piperidines, e.g. piperocaine containing further heterocyclic ring systems
- A61K31/454—Non condensed piperidines, e.g. piperocaine containing further heterocyclic ring systems containing a five-membered ring with nitrogen as a ring hetero atom, e.g. pimozide, domperidone
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P35/00—Antineoplastic agents
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P35/00—Antineoplastic agents
- A61P35/02—Antineoplastic agents specific for leukemia
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P43/00—Drugs for specific purposes, not provided for in groups A61P1/00-A61P41/00
Definitions
- the present invention relates to the treatment of a cell proliferative disorder or disorders related to FLT3 using a farnesyl transferase inhibitor in combination with an inhibitor of FLT3 tyrosine kinase.
- the fms-like tyrosine kinase 3 (FLT3) ligand is one of the cytokines that affects the development of multiple hematopoietic lineages. These effects occur through the binding of FLT3L to the FLT3 receptor, also referred to as fetal liver kinase-2 (flk-2) and STK-I, a receptor tyrosine kinase (RTK) expressed on hematopoietic stem and progenitor cells.
- FLT3 gene encodes a membrane- spanning class III RTK that plays an important role in proliferation, differentiation and apoptosis of cells during normal hematopoiesis.
- the FLT3 gene is mainly expressed by early myeloid and lymphoid progenitor cells. See McKenna, Hilary J. et al. Mice lacking flt3 ligand have deficient hematopoiesis affecting hematopoietic progenitor cells, dendritic cells, and natural killer cells. Blood. Jun 2000; 95: 3489- 3497; Drexler, H. G. and H. Quentmeier (2004). "FLT3: receptor and ligand.” Growth Factors 22(2): 71-3.
- the ligand for FLT3 is expressed by the marrow stromal cells and other cells and synergizes with other growth factors to stimulate proliferation of stem cells, progenitor cells, dendritic cells, and natural killer cells.
- Hematopoietic disorders are pre-malignant disorders of these systems and include, for instance, the myeloproliferative disorders, such as thrombocythemia, essential thrombocytosis (ET), angiogenic myeloid metaplasia, myelofibrosis (MF), myelofibrosis with myeloid metaplasia (MMM), chronic idiopathic myelofibrosis (IMF), polycythemia vera (PV), the cytopenias, and pre-malignant myelodysplastic syndromes.
- the myeloproliferative disorders such as thrombocythemia, essential thrombocytosis (ET), angiogenic myeloid metaplasia, myelofibrosis (MF), myelofibrosis with myeloid metaplasia (MMM), chronic idiopathic myelofibrosis (IMF), polycythemia vera (PV), the cytopenias, and pre-mal
- Hematological malignancies are cancers of the body's blood forming and immune systems, the bone marrow and lymphatic tissues. Whereas in normal bone marrow, FLT3 expression is restricted to early progenitor cells, in hematological malignancies, FLT3 is expressed at high levels or FLT3 mutations cause an uncontrolled induction of the FLT3 receptor and downstream molecular pathway, possibly Ras activation.
- Hematological malignancies include leukemias, lymphomas (non-Hodgkin's lymphoma), Hodgkin's disease (also called Hodgkin's lymphoma), and myeloma—for instance, acute lymphocytic leukemia (ALL), acute myeloid leukemia (AML), acute promyelocytic leukemia (APL), chronic lymphocytic leukemia (CLL), chronic myeloid leukemia (CML), chronic neutrophilic leukemia (CNL), acute undifferentiated leukemia (AUL), anaplastic large-cell lymphoma (ALCL), prolymphocytic leukemia (PML), juvenile myelomonocyctic leukemia (JMML), adult T-cell ALL, AML with trilineage myelodysplasia (AML/TMDS), mixed lineage leukemia (MLL), myelodysplastic syndromes (MDSs), myeloproliferative disorders (MPD),
- AML Acute Myelogenous Leukemia
- AML is a mixture of distinct diseases that differ in their genetic abnormalities, clinical features and response to therapy.
- Recent efforts have begun to tailor chemotherapy to the different sub-types of AML (subtypes are based on cytogenetic analysis and immunohistochemical analysis for disease associated protein expression) with some success.
- Treatment of AML typically occurs in two phases: induction and post-induction therapy.
- Induction therapy typically consists of three doses of an anthracycline such as daunorubicin followed by i.v.
- Post-induction treatment choice and success depends on the patient's age and AML sub-type. Despite the advances in diagnosis and treatment of AML over the last decade, the 5 year disease free survival for patients under 65 is only 40% and the 5 year disease free survival of patients over 65 is less than 10% percent. Thus, there remains a significant unmet clinical need for AML particularly in patients over 65. With the increased knowledge of the mechanisms of the different sub-types of AML new tailored treatments for the disease are beginning to immerge with some promising results.
- Farnesyl transferase inhibitors are a potent and selective class of inhibitors of intracellular farnesyl protein transferase (FPT). FPT catalyses the lipid modification of a host of intracellular proteins, including the small GTPases of the Ras and Rho family and lamin proteins, to direct their localization to the plasma membrane or membrane compartments within the cell.
- AML is a disease with very low long-term survival and an elevated rate of chemotherapy-induced toxicity and resistance (particularly in patients > 60 years of age). Additionally, the mechanism of proliferation of AML cells relies on the small GTPases of the Ras and Rho family. With the plethora of pre-clinical data supporting the efficacy of FTIs in AML treatment, several clinical trials were initiated with an FTI including; Rl 15777 (Zarnestra, Johnson and Johnson), BMS- 214662, CP-60974 (Pfizer) and Sch-6636 (lonafarnib, Schering-Plough). ZARNESTRA® (also known as Rl 15777 or tipifarnib) is the most advanced and promising of the FTI class of compounds.
- FLT3 Greater than 90% of patients with AML have FLT3 expression in blast cells. It is now known that roughly 30-40% of patients with AML have an activating mutation of FLT3, making FLT3 mutations the most common mutation in patients with AML. There are two known types of activating mutations of FLT3. One is a duplication of 4-40 amino acids in the juxtamembrane region (ITD mutation) of the receptor (25-30% of patients) and the other is a point mutation in the kinase domain (5-7% of patients). These receptor mutations cause constituitive activation of multiple signal transduction pathways including Ras/MAPkinase, PI3kinase/AKT, and the STAT pathways.
- ITD mutation juxtamembrane region
- the FLT3ITD mutation also has been shown to decrease the differentiation of early myeloid cells. More significantly, patients with the ITD mutation have decreased rates of remission induction, decreased remission times, and poorer overall prognosis. FLT3ITD mutations have also been found in ALL with the MLL gene rearrangement and in a sub-population of MDS patients. The presence of the FLT3ITD mutation in MDS and ALL is also correlated with accelerated disease progression and poorer prognosis in these patients. See Shih L. Y.
- the present invention provides a synergistic method of treatment comprising co-administration (simultaneous or sequential) of a novel FLT3 kinase inhibitor described herein and a farnesyl transferase inhibitor for the treatment of FLT3 expressing cell proliferative disorders.
- FTIs appropriate for use in the present invention are the following: WO-97/21701 and U.S. Patent No. 6,037,350, which are incorporated herein in their entirety, describe the preparation, formulation and pharmaceutical properties of certain farnesyl transferase inhibiting (imidazoly-5- yl)methyl-2-quinolinone derivatives of formulas (I), (II) and (III), as well as intermediates of formula (II) and (III) that are metabolized in vivo to the compounds of formula (I).
- the compounds of formulas (I), (II) and (III) are represented by
- X is oxygen or sulfur;
- R 9 is hydroxy, Ci_6alkyl, Ci_6alkyloxy, amino, Ci-8alkylamino or Cl-8alkylamino substituted with Ci-6alkyloxycarbonyl;
- R ⁇ , R3 and R ⁇ each independently are hydrogen, hydroxy, halo, cyano, Ci-6alkyl, Ci-6alkyloxy, hydroxyCi-6alkyloxy, Ci-6alkyloxyCi_6alkyloxy, i aminoC i-6alkyloxy, mono- or di(Ci-6alkyl)aminoCi_6alkyloxy, Ar ⁇ ,
- R ⁇ and R ⁇ each independently are hydrogen, halo, ArI, Ci_6alkyl, hydroxyCi- 6alkyl, Ci-6alkyloxyCi-6alkyl, Ci_6alkyloxy, Ci-6alkylthio, amino, hydroxycarbonyl, Ci-6alkyloxycarbonyl, Ci-6aUcylS(O)Ci-6alkyl or Ci- 6alkylS(O)2Ci_6alkyl;
- R ⁇ and R ⁇ each independently are hydrogen, halo, cyano, Cj- ⁇ alkyl, Ci- ⁇ alkyloxy, Ar ⁇ oxy, trihalomethyl, Ci- ⁇ alkylthio, di ⁇ Ci_6alkyl)amino, or when on adjacent positions R ⁇ and R ⁇ taken together may form a bivalent radical of formula -O-CH2-O- (c-1), or
- R ⁇ is hydrogen, Ci_6alkyl, cyano, hydroxycarbonyl, Ci_6alkyloxycarbonyl,
- R!° is hydrogen, Ci-6alkyl, Ci_6alkylcarbonyl, ArI, Ar 2 Ci_6alkyl, Ci-galkyloxycarbonylCi-galkyl, or a radical of formula -AIk 2 - OR13 or -Alk 2 -NRl 4 Rl5;
- RH is hydrogen, Ci_i2alkyl, ArI or Ar 2 Ci_6alkyl;
- R!2 is hydrogen, C ⁇ -6alkyl, Ci-igalkylcarbonyl, Ci_6alkyloxycarbonyl,
- Ci- ⁇ alkylcarbonylamino or a radical of formula -Alk ⁇ -ORl ⁇ or - Alk 2 -NRl 4 Rl 5 ; wherein AIk 2 is Ci_6alkanediyl;
- R!3 is hydrogen, Ci-6alkyl, Ci_6alkylcarbonyl, hydroxyCi_6alkyl, ArI or Ar 2 Ci-6alkyl;
- Rl4 is hydrogen, Ci_6alkyl, ArI or Ar 2 Ci-6alkyl
- R!5 is hydrogen, Ci_6alkyl, Ci-6alkylcarbonyl, A ⁇ l or Ar 2 Ci-6alkyl
- R.17 is hydrogen, halo, cyano, Ci_6alkyl, Ci- ⁇ alkyloxycarbonyl, Ar*
- R1 ⁇ is hydrogen, Ci_6alkyl, Ci-galkyloxy or halo
- R 1 ⁇ is hydrogen or Ci-6alkyl;
- Ar ⁇ is phenyl or phenyl substituted with Ci-6alkyl, hydroxy, amino, Ci- ⁇ alkyloxy or halo; and Ar ⁇ is phenyl or phenyl substituted with Ci-6alkyl, hydroxy, amino, Ci- ⁇ alkyloxy or halo.
- X is oxygen or sulfur;
- R ⁇ and R ⁇ each independently are hydrogen, hydroxy, halo, cyano, Ci- ⁇ alkyl, C ⁇ -6alkyloxy, hydroxyCi- ⁇ alkyloxy, Ci-galkyloxyCi- ⁇ alkyloxy, aminoCi- ⁇ alkyloxy, mono- or di(Ci-6alkyl)aminoCi-6alkyloxy, Ar*, Ar ⁇ Ci- ⁇ alkyl, ArWy, Ar ⁇ Ci- ⁇ alkyloxy, hydroxycarbonyl,
- Ci-6alkyloxycarbonyl, trihalomethyl, trihalomethoxy, C2-6alkenyl; or when on adjacent positions R ⁇ and R ⁇ taken together may form a bivalent radical of formula
- R 4 and R 5 each independently are hydrogen, Ar 1 , C 1-6 alkyl, C 1-6 alkyloxy, C 1-6 alkylthio, amino, hydroxycarbonyl, C 1-6 alkyloxycarbonyl, C 1-6 alkylS(O)C 1-6 alkyl or C 1-6 alkylS(O) 2 C 1-6 alkyl;
- R ⁇ and R ⁇ each independently are hydrogen, halo, cya ⁇ o, Ci-6alkyl, Ci-6alkyloxy or Ar ⁇ oxy;
- R ⁇ is hydrogen, Ci- ⁇ alkyl, cyano, hydroxycarbonyl, Ci- ⁇ alkyloxycarbonyl,
- Ci-6alkyloxyCi-6alkyl aminocarbonylCi- ⁇ alkyl, Ar ⁇ , Ar 2 Ci_6alkyloxyCi-6alkyl,
- RIO is hydrogen, Ci-galkyl, Cj-6alkyloxy or halo;
- RI 1 is hydrogen or Ci_6alkyl;
- ArI j s phenyl or phenyl substituted with Ci-6alkyl,hydroxy,a ⁇ nino,Cl-6alkyloxy or halo;
- Ar2 is phenyl or phenyl substituted with C i-6alkyl, hydroxy, amino, Ci-6alkyloxy or halo.
- X is oxygen or sulfur
- -A- is a bivalent radical of formula
- -CH CH- (a-1), -CH2-S- (a-6), -CH2-CH2- (a-2), -CH2-CH2-S- (a-7),
- RI and R2 each independently are hydrogen, hydroxy, halo, cyano, Ci-6alkyl, trihalomethyl, trihalomethoxy, C2-6alkenyl, Ci-6alkyloxy, hydroxyCi- galkyloxy, Ci-6alkyloxyCi_6alkyloxy, Ci_6alkyloxycarbonyl, aminoCi-6alkyloxy, mono- or di(Ci_6alkyl)aminoCi-6alkyloxy, Ar ⁇ , Ar ⁇ -C i-6alkyl, Ar ⁇ -oxy, Ar ⁇ -C i-£alkyloxy; or when on adjacent positions R* and R2 taken together may form a bivalent radical of formula -O-CH2-O- (b-1),
- R ⁇ and R4 each independently are hydrogen, halo, cyano, Ci-6alkyl, Ci- ⁇ alkyloxy, Ar ⁇ -oxy, Ci_6alkylthio, di(Ci-6alkyl)amino, trihalomethyl, trihalomethoxy, or when on adjacent positions R ⁇ and R4 taken together may form a bivalent radical of formula -O-CH2-O- (c-1),
- R-> is a radical of formula
- R ⁇ is hydrogen, halo, Ar ⁇ , C ⁇ -6alkyl, hydroxyCi_6alkyl,
- Rl ⁇ is hydrogen, Ci-6alkyl or di(Ci_4alkyl)aminosulfonyl; is hydrogen, hydroxy, halo, Ci_6alkyl, cyano, haloCi-6alkyl, hydroxyCi- ⁇ alkyl, cyanoCi-6alkyl, aminoCi- ⁇ alkyl, Ci-6alkyloxyCi-6alkyl,
- R 7 is hydrogen, Ci_6alkyl, Ci-6alkylcarbonyl, Ar ⁇ , Ar 6 -Ci_6alkyl, Ci- ⁇ alkyloxycarbonylCi- ⁇ alkyl, or a radical of formula -AIk- OR 10 or -AIk-NR 1 IR 12 ;
- R 8 is hydrogen, Ci_6alkyl, Ar 7 or Ar 7 -Ci-6alkyl
- R9 is hydrogen, Ci_6alkyl, Ci-6alkylcarbonyl, Ci_6alkyloxycarbonyl, Ci-galkylaminocarbonyl, Ar 8 , Ar 8 -Ci-6alkyl, Ci_6alkylcarbonyl-
- R 10 is hydrogen, Ci_6alkyl, Ci_6alkylcarbonyl, hydroxyCi_6alkyl, Ar 9 or Ar 9 -Ci_6alkyl;
- R.11 is hydrogen, Ci-galkyl, Ci-6alkylcarbonyl, Ai ⁇ or Ar lo -Ci_6alkyl;
- R 12 is hydrogen, Ci_6alkyl, Ar 1 I or Ar ⁇ -Ci-oalkyl; and ArI t0 A 1 11 Qj-Q QQc) x independently selected from phenyl; or phenyl substituted with halo, Ci-6alkyl, Ci-6alkyloxy or trifluoromethyl.
- X is oxygen or sulfur;
- RI and R 2 each independently are hydrogen, hydroxy, halo, cyano, Ci- ⁇ alkyl, trihalomethyl, trihalomethoxy, C2-6 a lkenyl, Cj-galkyloxy, hydroxyCi- ⁇ alkyloxy, Cl- ⁇ alkyloxyCi-galkyloxy, Ci-oaUcyloxycarbonyl, aminoCi-6alkyloxy, mono- or di(Ci-6alkyl)aminoCi-6alkyloxy, Ar ⁇ ,
- Ci_6alkylthio di(Ci-6alkyl)amino, trihalomethyl or trihalomethoxy
- R ⁇ is hydrogen, halo, Ci_6alkyl, cyano, haloCi-6aUcyl, hydroxyCi_6alkyl, cyanoCi-6alkyl, aminoCi- ⁇ alkyl, Ci-6alkyloxyCi-6alkyl,
- ArlCi-6alkyloxyCi-6alkyl or a radical of formula _O-Rl0 (a-1),
- R 1 ⁇ is hydrogen, Ci_6alkyl, Ci- ⁇ alkylcarbonyl, Ar 1 , Ar 1 Ci-OaUCyI, Ci- ⁇ alkyloxycarbonylCi- ⁇ alkyl, or a radical of formula -AIk-
- R 11 is hydrogen, Ci-6alkyl, Ar 1 or Ar 1 Ci-OaUCyI;
- R 1 ⁇ is hydrogen, Ci_6alkyl, Ci- ⁇ alkylcarbonyl, Ci- ⁇ alkyloxycarbonyl,
- Ci- ⁇ alkylcarbonylamino or a radical of formula -AIk-OR 13 or -AIk-NR 14 R 15 ; wherein AIk is Ci_6alkanediyl;
- R 13 is hydrogen, Ci_6alkyl, Ci-6alkylcarbonyl, hydroxyCi-6alkyl, Ar 1 or Ar 1 Ci-OaUCyI;
- R 14 is hydrogen, Ci-6alkyl, Ar 1 or AriCi- ⁇ alkyl
- R 15 is hydrogen, Ci-6alkyl, Ci_6aUcylcarbonyl, Ar 1 or
- Ar 1 Ci-OaUCyI; R ⁇ is a radical of formula
- R ⁇ is hydrogen, halo, ArI, Ci- ⁇ alkyl, hydroxyCi- ⁇ alkyl,
- Rl7 is hydrogen, Ci_6alkyl or di(Ci-4alkyl)aminosulfonyl;
- R ⁇ is hydrogen or Ci- ⁇ alkyl provided that the dotted line does not represent a bond
- R 8 is hydrogen, Ci_6alkyl or Ar 2 CH2 or HeI 1 OE ⁇
- R9 is hydrogen, Ci_6alkyl , Ci-6alkyloxy or halo
- ArI is phenyl; or phenyl substituted with 1 or 2 substituents each independently selected from halo, Ci_6 " alkyl, Ci-6alkyloxy or trifluoromethyl;
- Ar ⁇ is phenyl; or phenyl substituted with 1 or 2 substituents each independently selected from halo, Ci- ⁇ alkyl, Ci-galkyloxy or trifluoromethyl; and
- Het ⁇ is pyridinyl; pyridinyl substituted with 1 or 2 substituents each independently selected from halo, Ci-6alkyl, Ci-6alkyloxy or trifluoromethyl.
- R 6 , R 7 and R 8 are independently hydrogen, C 1-4 alkyl, hydroxy,
- each R 9 independently is hydrogen, halo, halocarbonyl, aminocarbonyl, hydroxyC 1-4 alkyl, cyano, carboxyl, C 1-4 alkyl, C 1-4 alkyloxy, C 1-4 alkyloxyC 1-
- each R 1 and R 2 are independently hydroxy, halo, cyano, Ci-6alkyl, trihalomethyl, trihalomethoxy, C 2-6 alkenyl, C 1-6 alkyloxy, hydroxyC 1-6 alkyioxy, C 1-6 alkylthio, Ci- 6 alkyloxyC 1-6 alkyloxy, C 1-6 alkyloxycarbonyl, aminoC 1 _ 6 alkyloxy, mono- or di(C 1-6 alkyl)amino, mono- or di(C 1-6 alkyl)aminoC 1-6 alkyloxy, aryl, arylC 1-6 alkyl, aryloxy or arylC
- R is hydrogen, halo, C 1-6 alkyl, cyano, haloC 1-6 alkyl, hydroxyC 1-6 alkyl, cyanoC 1-6 alkyl, aminod-ealkyl, d_ 6 alkyloxyCi- 6 alkyl, d- 6 alkylthioC 1-6 alkyl, aminocarbonylC 1-6 alkyl, hydroxycarbonyl, hydroxycarbonyld-ealkyl,
- R 10 is hydrogen, C 1-6 alkyl, C 1-6 alkylcarbonyl, aryl, arylC 1-6 alkyl,
- Ci-eaUcyloxycarbonylC ⁇ alkyl or a radical of formula -AIk-OR 13 or -AIk-NR 14 R 15 ;
- R 11 is hydrogen, C 1-6 alkyl, aryl or arylC 1-6 alkyl;
- R 12 is hydrogen, C 1-6 alkyl, aryl, hydroxy, amino, C 1-6 alkyloxy,
- R 13 is hydrogen, C 1-6 alkyl, C ⁇ ealkylcarbonyl, hydroxyC 1-6 alkyl, aryl or arylC 1-6 alkyl;
- R 14 is hydrogen, C 1-6 alkyl, aryl or arylCi- ⁇ alkyl
- R 15 is hydrogen, C ⁇ alkyl, C 1-6 alkylcarbonyl, aryl or arylC 1-6 alkyl
- ' R 4 is a radical of formula
- R 16 is hydrogen, halo, aryl, C 1-6 alkyl, hydroxyC 1-6 alkyl,
- R 16 may also be bound to one of the nitrogen atoms in the imidazole ring of formula (c-1) or (c-2), in which case the meaning of R 16 when bound to the nitrogen is limited to hydrogen, aryl, Q ⁇ alkyl, hydroxyC 1-6 alkyl, C ⁇ alkyloxyC ⁇ ealkyl, Q-ealkyloxycarbonyl, C 1-6 alkylS(O)C 1-6 alkyl or C 1-6 alkylS(O) 2 C 1-6 alkyl;
- R 17 is hydrogen, C 1-6 alkyl, C 1-6 alkyloxyC 1-6 alkyl, arylC 1-6 alkyl, trifluoromethyl or di(C 1-4 alkyl)aminosulfonyl;
- R 5 is C 1-6 alkyl , C 1-6 alkyloxy or halo;
- aryl is phenyl, naphthalenyl or phenyl substituted with 1 or more substituents each independently selected from halo, C 1-6 alkyl, C ⁇ alkyloxy or trifluoromethyl .
- farnesyltransferase inhibitors of formula (I), (II), (III), (IV), (V), (VI), (VII), (VIII) or (IX) above
- other farnesyltransferase inhibitors known in the art include: Arglabin (i.e.l(R)-10-epoxy-5(S),7(S)-guaia-3(4),l l(13)-dien-6,12-olide described in WO-98/28303 (NuOncology Labs); perrilyl alcohol described in WO- 99/45912 (Wisconsin Genetics); SCH-66336, i.e.
- FLT3 kinase inhibitors known in the art include: AG1295 and AG1296; Lestaurtinib (also known as CEP 701, formerly KT-5555, Kyowa Hakko, licensed to Cephalon); CEP-5214 and CEP-7055 (Cephalon); CHIR-258 (Chiron Corp.); EB-10 and IMC- EBlO (ImClone Systems Inc.); GTP 14564 (Merk Biosciences UK).
- Midostaurin also known as PKC 412 Novartis AG
- MLN 608 Millennium USA
- MLN-518 formerly CT53518, COR Therapeutics Inc., licensed to Millennium Pharmaceuticals Inc.
- MLN-608 Millennium Pharmaceuticals Inc.
- SU-11248 Pfizer USA
- SU- 11657 Pfizer USA
- THRX-165724 Therassemble Inc.
- AMI- 10706 Theravance Inc.
- VX-528 and VX-680 Vertex Pharmaceuticals USA, licensed to Novartis (Switzerland), Merck & Co USA
- XL 999 Exelixis USA
- Single-agent CEP-701 a novel FLT3 inhibitor, shows biologic and clinical activity in patients with relapsed or refractory acute myeloid leukemia Blood, May 2004; 103: 3669 - 3676; Griswold, Ian J. «t al. Effects of MLN518, A Dual FLT3 and KIT Inhibitor, on Normal and Malignant Hematopoiesis. Blood, JuI 2004; [Epub ahead of print]; Yee, Kevin W. H. et al. SU5416 and SU5614 inhibit kinase activity of wild-type and mutant FLT3 receptor tyrosine kinase.
- the present invention comprises a method of inhibiting FLT3 tyrosine kinase activity or expression or reducing FLT3 kinase activity or expression in a cell or a subject comprising the administration of a FLT3 kinase inhibitor and a farnesyl transferase inhibitor. Included within the present invention is both prophylactic and therapeutic methods for treating a subject at risk of (or susceptible to) developing a cell proliferative disorder or a disorder related to FLT3, the methods comprising generally administering to the subject a prophylactically effective amount of a FLT3 kinase inhibitor and a farnesyl transferase inhibitor.
- the FLT3 kinase inhibitor and farnesyl transferase inhibitor can be administered as a unitary pharmaceutical composition comprising a FLT3 kinase inhibitor, a farnesyl transferase inhibitor and a pharmaceutically acceptable carrier, or as separate pharmaceutical compositions: (1) a first pharmaceutical composition comprising a FLT3 kinase inhibitor and a pharmaceutically acceptable carrier, and (2) a second pharmaceutical composition comprising a farnesyl transferase inhibitor and a pharmaceutically acceptable carrier.
- the invention further encompasses a multiple component therapy for treating or inhibiting onset of a cell proliferative disorder or a disorder related to FLT3 in a subject comprising administering to the subject a therapeutically or prophylactically effective amount of a FLT3 kinase inhibitor, a farnesyl transferase inhibitor and one or more other anti-cell proliferation therapy(ies) including chemotherapy, radiation therapy, gene therapy and immunotherapy.
- Figure 1 Effects of oral administration of compounds of the present invention on the growth of MV4-11 tumor xenografts in nude mice.
- Figure 2. Effects of oral administration of compounds of the present invention on the final weight of MV4-11 tumor xenografts in nude mice.
- Figure 4 is intentionally omitted.
- FIG. 7a-c A low dose of a FLT3 inhibitor significantly shifts the potency of Tipifarnib in FLT3 dependent cells.
- Figure 8a-d Single dose combinations of a FLT3 inhibitor Compound (A) and Tipifarnib or Cytarabine synergistically inhibit FLT3 -dependent cell line growth.
- Figure 9a-b Single dose combination of FLT3 inhibitor Compounds B and D with either Tipifarnib or Cytarabine synergistically inhibits MV4-11 cell growth.
- FIG. 10.1 FLT3 inhibitor Compound A and Tipifarnib synergistically inhibit the proliferation of FLT3 dependent cells as measured by the method of Chou ad Talalay.
- FIG. 10 FLT3 inhibitor Compound D and Tipifarnib synergistically inhibit the proliferation of FLT3 dependent cells as measured by the method of Chou ad Talalay.
- Figure 10.5. FLT3 inhibitor Compound H and Tipifarnib synergistically inhibit the proliferation of MV4-11 cells as measured by the method of Chou and Talalay.
- FIG. 10 FLT3 inhibitor Compound E and Zarnestra synergistically inhibit the proliferation of MV4-11 cells as measured by the method of Chou and Talalay.
- FIG. 10 FLT3 inhibitor Compound F and Tipifarnib synergistically inhibit the proliferation of FLT3 dependent MV4-11 cells as measured by the method of Chou ad Talalay.
- FIG. 10 FLT3 inhibitor Compound G and Tipifarnib synergistically inhibit the proliferation of FLT3 dependent MV4-11 cells as measured by the method of Chou ad Talalay.
- Figure lla-c The combination of a FLT3 inhibitor and an FTI synergistically induces apoptosis of MV4-11 cells.
- Figure 12 a-d Dose responses of single agent induction of caspase 3/7 activation and apoptosis of FLT3 dependent MV4-11 cells.
- FIG 13.3 FLT3 inhibitor Compound D and Tipifarnib synergistically induce the activation of caspase 3/7 in FLT3 dependent MV4-11 cells as measured by the method of Chou ad Talalay.
- Figure 14 Tipif arnib increases the potency of FLT3 inhibitor Compound A inhibition of FLT3 and MapKinase phosphorylation in MV4-11 cells.
- Figure 15 Effects over time on tumor volume of orally administered FLT3 inhibitor CompoundB and Tipif arnib, alone and in combination, on the growth of MV-4-11 tumor xenografts in nude mice.
- Figure 16 Effects on tumor volume of orally administered FLT3 inhibitor Compound B and Tipif arnib alone or in combination on the growth of MV-4-11 tumor xenografts in nude mice at the terminal study day.
- Figure 17 Effects on tumor weight of orally administered FLT3 inhibitor Compound B and Tipifarnib alone or in combination on the growth of MV-4-11 tumor xenografts in nude mice at the terminal study day.
- FIG. 19 Effects of oral administration of FLT3 inhibitor Compound D of the present invention on the final weight of MV4-11 tumor xenografts in nude mice.
- FIG. 20 Effects of oral administration of FLT3 inhibitor Compound D of the present invention on mouse body weight.
- FIG. 21 FLT3 phosphorylation in MV4-11 tumors obtained from mice treated with FLT3 inhibitor Compound D of the present invention.
- Figure 22 Effects over time on tumor volume of orally administered FLT3 inhibitor Compound D and Tipifarnib, alone and in combination, on the growth of MV-4-11 tumor xenografts in nude mice.
- Figure 23 Effects on tumor volume of orally administered FLT3 inhibitor Compound D and Tipifarnib alone or in combination on the growth of MV-4-11 tumor xenografts in nude mice.
- Figure 24 Effects of orally administered FLT3 inhibitor Compound D and Tipifarnib alone or in combination on the final weight of MV-4-11 tumor xenografts in nude mice.
- the present invention comprises a method of inhibiting FLT3 tyrosine kinase activity or expression or reducing FLT3 kinase activity or expression in a cell or a subject comprising the administration of a FLT3 kinase inhibitor and a farnesyl transferase inhibitor.
- An embodiment of the present invention comprises a method for reducing or inhibiting FLT3 tyrosine kinase activity in a subject comprising the administration of a FLT3 kinase inhibitor and a farnesyl transferase inhibitor to the subject.
- An embodiment of the present invention comprises a method of treating disorders related to FLT3 tyrosine kinase activity or expression in a subject comprising the administration of a FLT3 kinase inhibitor and a farnesyl transferase inhibitor to the subject.
- An embodiment of the present invention comprises a method for reducing or inhibiting the activity of FLT3 tyrosine kinase in a cell comprising the step of contacting the cell with a FLT3 kinase inhibitor and a farnesyl transferase inhibitor.
- the present invention also provides a method for reducing or inhibiting the expression of FLT3 tyrosine kinase in a subject comprising the step of administering a FLT3 kinase inhibitor and a farnesyl transferase inhibitor to the subject.
- the present invention further provides a method of inhibiting cell proliferation in a cell comprising the step of contacting the cell with a FLT3 kinase inhibitor and a farnesyl transferase inhibitor.
- the kinase activity of FLT3 in a cell or a subject can be determined by procedures ' well known in the art, such as the FLT3 kinase assay described herein.
- subject refers to an animal, preferably a mammal, most preferably a human, who has been the object of treatment, observation or experiment.
- contacting refers to the addition of compound to cells such that compound is taken up by the cell.
- the present invention provides both prophylactic and therapeutic methods for treating a subject at risk of (or susceptible to) developing a cell proliferative disorder or a disorder related to FLT3.
- the invention provides methods for preventing in a subject a cell proliferative disorder or a disorder related to FLT3, comprising administering to the subject a prophylactically effective amount of (1) a first pharmaceutical composition comprising a FLT3 kinase inhibitor and a pharmaceutically acceptable carrier, and (2) a second pharmaceutical composition comprising a farnesyl transferase inhibitor and a pharmaceutically acceptable carrier.
- the invention provides methods for preventing in a subject a cell proliferative disorder or a disorder related to FLT3, comprising administering to the subject a prophylactically effective amount of a pharmaceutical composition comprising a FLT3 kinase inhibitor, a farnesyl transferase inhibitor and a pharmaceutically acceptable carrier.
- Administration of said prophylactic agent(s) can occur prior to the manifestation of symptoms characteristic of the cell proliferative disorder or disorder related to FLT3, such that a disease or disorder is prevented or, alternatively, delayed in its progression.
- the invention pertains to methods of treating in a subject a cell proliferative disorder or a disorder related to FLT3 comprising administering to the subject a therapeutically effective amount of (1) a first pharmaceutical composition comprising a FLT3 kinase inhibitor and a pharmaceutically acceptable carrier, and (2) a second pharmaceutical composition comprising a farnesyl transferase inhibitor and a pharmaceutically acceptable carrier.
- the invention pertains to methods of treating in a subject a «ell proliferative disorder or a disorder related to FLT3 comprising administering to the subject a therapeutically effective amount of a pharmaceutical composition comprising a FLT3 kinase inhibitor, a farnesyl transferase inhibitor and a pharmaceutically acceptable carrier.
- Administration of said therapeutic agent(s) can occur concurrently with the manifestation of symptoms characteristic of the disorder, such that said therapeutic agent serves as a therapy to compensate for the cell proliferative disorder or disorders related to FLT3.
- the FLT3 kinase inhibitor and farnesyl transferase inhibitor can be administered as a unitary pharmaceutical composition comprising a FLT3 kinase inhibitor, a farnesyl transferase inhibitor and a pharmaceutically acceptable carrier, or as separate pharmaceutical compositions: (1) a first pharmaceutical composition comprising a FLT3 kinase inhibitor and a pharmaceutically acceptable carrier, and (2) a second pharmaceutical composition comprising a farnesyl transferase inhibitor and a pharmaceutically acceptable carrier.
- the two pharmaceutical compositions may be administered simultaneously (albeit in separate compositions), sequentially in either order, at approximately the same time, or on separate dosing schedules. On separate dosing schedules, the two compositions are administered within a period and in an amount and manner that is sufficient to ensure that an advantageous or synergistic effect is achieved.
- the dosage amounts and regime of the FLT3 kinase inhibitor and farnesyl transferase inhibitor will be similar to or less than those already employed in clinical therapies where these agents are administered alone, or in combination with other chemotherapeutics .
- prophylactically effective amount refers to an amount of an active compound or pharmaceutical agent that inhibits or delays in a subject the onset of a disorder as being sought by a researcher, veterinarian, medical doctor or other clinician.
- terapéuticaally effective amount refers to an amount of active compound or pharmaceutical agent that elicits the biological or medicinal response in a subject that is being sought by a researcher, veterinarian, medical doctor or other clinician, which includes alleviation of the symptoms of the disease or disorder being treated.
- composition is intended to encompass a product comprising the specified ingredients in the specified amounts, as well as any product which results, directly or indirectly, from combinations of the specified ingredients in the specified amounts.
- disorders related to FLT3 shall include diseases associated with or implicating FLT3 activity, for example, the overactivity of FLT3, and conditions that accompany with these diseases.
- overactivity of FLT3 refers to either 1) FLT3 expression in cells which normally do not express
- disorders related to FLT3 include disorders resulting from over stimulation of FLT3 due to abnormally high amount of FLT3 or mutations in FLT3, or disorders resulting from abnormally high amount of FLT3 activity due to abnormally high amount of FLT3 or mutations in FLT3. It is known that overactivity of FLT3 has been implicated in the pathogenesis of a number of diseases, including the cell proliferative disorders, neoplastic disorders and cancers listed below.
- cell proliferative disorders refers to unwanted cell proliferation of one or more subset of cells in a multicellular organism resulting in harm (i.e., discomfort or decreased life expectancy) to the multicellular organisms.
- Cell proliferative disorders can occur in different types of animals and humans.
- “cell proliferative disorders” include neoplastic disorders and other cell proliferative disorders.
- neoplastic disorder refers to a tumor resulting from abnormal or uncontrolled cellular growth.
- neoplastic disorders include, but are not limited to, hematopoietic disorders such as, for instance, the myeloproliferative disorders, such as thrombocythemia, essential thrombocytosis (ET), angiogenic myeloid metaplasia, myelofibrosis (MF), myelofibrosis with myeloid metaplasia (MMM), chronic idiopathic myelofibrosis (IMF), polycythemia vera (PV), the cytopenias, and pre-malignant myelodysplastic syndromes; cancers such as glioma cancers, lung cancers, breast cancers, colorectal cancers, prostate cancers, gastric cancers, esophageal cancers, colon cancers, pancreatic cancers, ovarian cancers, and hematoglogical malignancies, including myeloproliferative disorders
- hematological malignancies include, for instance, leukemias, lymphomas (non-Hodgkin's lymphoma), HodgMn's disease (also called Hodgkin's lymphoma), and myeloma ⁇ for instance, acute lymphocytic leukemia (ALL), acute myeloid leukemia (AML), acute promyelocyte leukemia (APL), chronic lymphocytic leukemia (CLL), chronic myeloid leukemia (CML), ' chronic neutrophilic leukemia (CNL), acute undifferentiated leukemia (AUL), anaplastic large-cell lymphoma (ALCL), prolymphocyte leukemia (PML), juvenile myelomonocyctic leukemia (JMML), adult T-cell ALL, AML with trilineage myelodysplasia (AML/TMDS), mixed lineage leukemia (MLL), myelodysplastic syndromes (MDSs), myeloprolif
- the invention encompasses a multiple component therapy for treating or inhibiting onset of a cell proliferative disorder or a disorder related to FLT3 in a subject comprising administering to the subject a therapeutically or prophylactically effective amount of a FLT3 kinase inhibitor, a farnesyl transferase inhibitor and and one or more other anti-cell proliferation therapy(ies) including chemotherapy, radiation therapy, gene therapy and immunotherapy.
- chemotherapeutic agents refers to a therapy involving a chemotherapeutic agent.
- a variety of chemotherapeutic agents may be used in the multiple component treatment methods disclosed herein.
- Chemotherapeutic agents contemplated as exemplary include, but are not limited to: platinum compounds (e.g.,cisplatin, carboplatin, oxaliplatin); taxane compounds (e.g., paclitaxcel, docetaxol); campotothecin compounds (irinotecan, topotecan); ; vinca alkaloids (e.g., vincristine, vinblastine, vinorelbine); anti-tumor nucleoside derivatives (e.g., 5-fluorouracil, leucovorin, gemcitabine, capecitabine) ; alkylating agents (e.g., cyclophosphamide, carmustine, lomustine, thiotepa); epipodophyllotoxins / podophyllotoxins
- aromatase inhibitors e.g., anastrozole, letrozole, exemestane
- anti-estrogen compounds e.g., tamoxifen, fulvestrant
- antifolates e.g., premetrexed disodium
- hypomethylating agents e.g., azacitidine
- biologies e.g., gemtuzamab, cetuximab, rituximab, pertuzumab, trastuzumab, bevacizumab, erlotinib
- antibiotics/anthracyclines e.g.
- idarubicin actinomycin D, bleomycin, daunorubicin, doxorubicin, mitomycin C, dactinomycin, carminomycin, daunomycin
- antimetabolites e.g., aminopterin, clofarabine, cytosine arabinoside, methotrexate
- tubulin-binding agents e.g. combretastatin, colchicine, nocodazole
- topoisomerase inhibitors e.g., camptothecin.
- Further useful agents include verapamil, a calcium antagonist found to be useful in combination with antineoplastic agents to establish chemosensitivity in tumor cells resistant to accepted chemotherapeutic agents and to potentiate the efficacy of such compounds in drug-sensitive malignancies. See Simpson WG, The calcium channel blocker verapamil and cancer chemotherapy. Cell Calcium. 1985 Dec;6(6):449-67. Additionally, yet to emerge chemotherapeutic agents are contemplated as being useful in combination with the compound of the present invention.
- the FLT3 kinase inhibitor and farnesyl transferase inhibitor may be administered in combination with radiation therapy.
- radiation therapy refers to a therapy that comprises exposing the subject in need thereof to radiation. Such therapy is known to those skilled in the art. The appropriate scheme of radiation therapy will be similar to those already employed in clinical therapies wherein the radiation therapy is used alone or in combination with other chemotherapeutics.
- the FLT3 kinase inhibitor and farnesyl transferase inhibitor may be administered in combination with gene therapy.
- gene therapy refers to a therapy targeting on particular genes involved in tumor development. Possible gene therapy strategies include the restoration of defective cancer-inhibitory genes, cell transduction or transfection with antisense DNA corresponding to genes coding for growth factors and their receptors, RNA-based strategies such as ribozymes, RNA decoys, antisense messenger RNAs and small interfering RNA-(SiRNA) molecules and the so-called 'suicide genes'.
- the FLT3 kinase inhibitor and farnesyl transferase inhibitor may be administered in combination with immunotherapy.
- immunotherapy refers to a therapy targeting particular protein involved in tumor development via antibodies specific to such protein. For example, monoclonal antibodies against vascular endothelial growth factor have been used in treating cancers.
- additional chemotherapeutic agent(s) are used in conjunction with the FLT3 kinase inhibitor and farnesyl transferase inhibitor
- the additional chemotherapeutic agent(s), the FLT3 kinase inhibitor and the farnesyl transferase inhibitor may be administered simultaneously (e.g. in separate or unitary compositions) sequentially in any order, at approximately the same time, or on
- the pharmaceuticals will be administered within a period and in an amount and manner that is sufficient to ensure that an advantageous and synergistic effect is achieved. It will be appreciated that the preferred method and order of administration and the respective dosage amounts and regimes for the additional chemotherapeutic agent(s) will depend on the particular chemotherapeutic agent(s) being administered in conjunction with the FLT3 kinase inhibitor and farnesyl transferase inhibitor, their route of administration, the particular tumor being treated and the particular host being treated.
- the appropriate doses of the additional chemotherapeutic agent(s) will be generally similar to or less than those already employed in clinical therapies wherein the chemotherapeutics are administered alone or in combination with other chemotherapeutics.
- platinum compounds are advantageously administered in a dosage of 1 to 500 mg per square meter (mg/m 2 ) of body surface area, for example 50 to 400 mg/m , particularly for cisplatin in a dosage of about 75 mg/m and for carboplatin in about 300mg/m per course of treatment.
- Cisplatin is not absorbed orally and must therefore be delivered via injection intravenously, subcutaneously, intratumorally or intraperitoneally.
- taxane compounds are advantageously administered in a dosage of 50 to 400 mg per square meter (mg/m 2 ) of body surface area, for example 75 to 250 mg/m 2 , particularly for paclitaxel in a dosage of about 175 to 250 mg/m 2 and for docetaxel in about 75 to 150 mg/m 2 per course of treatment.
- camptothecin compounds are advantageously administered in a dosage of 0.1 to 400 mg per square meter (mg/m ) of body surface area, for example 1 to 300 mg/m , particularly for irinotecan in a dosage of about 100 to 350 mg/m 2 and for topotecan in about 1 to 2 mg/m 2 per course of treatment.
- vinca alkaloids may be advantageously administered in a dosage of 2 to 30 mg per square meter (mg/m 2 ) of body surface area, particularly for vinblastine in a dosage of about 3 to 12 mg/m 2 , for vincristine in a dosage of about 1 to 2 mg/m , and for vinorelbine in dosage of about 10 to 30 mg/m per course of treatment.
- anti-tumor nucleoside derivatives may be advantageously administered in a dosage of 200 to 2500 mg per square meter (mg/m ) of body surface area, for example 700 to 1500 mg/m .
- 5-fluorouracil (5-FU) is commonly used via intravenous administration with doses ranging from 200 to 500mg/m 2 (preferably from 3 to 15 mg/kg/day).
- Gemcitabine is advantageously administered in a dosage of about 800 to 1200 mg/m and capecitabine is advantageously administered in about 1000 to 2500 mg/m 2 per course of treatment.
- alkylating agents may be advantageously administered in a dosage of 100 to 500 mg per square meter (mg/m 2 ) of body surface area, for example 120 to 200 mg/m 2 , particularly for cyclophosphamide in a dosage of about 100 to 500 mg/m 2 , for chlorambucil in a dosage of about 0.1 to 0.2 mg/kg of body weight, for carmustine in a dosage of about 150 to 200 mg/m 2 , and for lomustine in a dosage of about 100 to 150 mg/m 2 per course of treatment.
- mg/m 2 body surface area
- cyclophosphamide in a dosage of about 100 to 500 mg/m 2
- chlorambucil in a dosage of about 0.1 to 0.2 mg/kg of body weight
- carmustine in a dosage of about 150 to 200 mg/m 2
- lomustine in a dosage of about 100 to 150 mg/m 2 per course of treatment.
- podophyllotoxin derivatives may be advantageously administered in a dosage of 30 to 300 mg per square meter (mg/m2) of body surface area, for example 50 to 250 mg/m 2 , particularly for etoposide in a dosage of about 35 to 100 mg/m 2 and for teniposide in about 50 to 250 mg/m 2 per course of treatment.
- anthracycline derivatives may be advantageously ' administered in a dosage of 10 to 75 mg per square meter (mg/m 2 ) of body surface area, for example 15 to 60 mg/m 2 , particularly for doxorubicin in a dosage of about 40 to 75 mg/m 2 , for daunorubicin in a dosage of about 25 to 45mg/m 2 , and for idarubicin in a dosage of about 10 to 15 mg/m 2 per course of treatment.
- anti-estrogen compounds may be advantageously administered in a dosage of about 1 to lOOmg daily depending on the particular agent and the condition being treated.
- Tamoxifen is advantageously administered orally in a dosage of 5 to 50 mg, preferably 10 to 20 mg twice a day, continuing the therapy for sufficient time to achieve and maintain a therapeutic effect.
- Toremifene is advantageously administered orally in a dosage of about 60mg once a day, continuing the therapy for sufficient time to achieve and maintain a therapeutic effect.
- Anastrozole is advantageously administered orally in a dosage of about lmg once a day.
- Droloxifene is advantageously administered orally in a dosage of about 20- lOOmg once a day.
- Raloxifene is advantageously administered orally in a dosage of about 60mg once a day.
- Exemestane is advantageously administered orally in a dosage of about 25mg once a day.
- biologies may be advantageously administered in a dosage of about 1 to 5 mg per square meter (mg/m 2 ) of body surface area, or as known in the art, if different.
- trastuzumab is advantageously administered in a dosage of 1 to 5 mg/m 2 particularly 2 to 4mg/m 2 per course of treatment. Dosages may be administered, for example once, twice or more per course of treatment, which may be repeated for example every 7, 14, 21 or 28 days.
- the FLT3 kinase inhibitor and farnesyl transferase inhibitor can be administered to a subject systemically, for example, intravenously, orally, subcutaneously, intramuscular, intradermal, or parenterally.
- the FLT3 kinase inhibitor and farnesyl transferase inhibitor can also be administered to a subject locally.
- Non-limiting examples of local delivery systems include the use of intraluminal medical devices that include intravascular drug delivery catheters, wires, pharmacological stents and endoluminal paving.
- the FLT3 kinase inhibitor and farnesyl transferase inhibitor can further be administered to a subject in combination with a targeting agent to achieve high local concentration of the FLT3 kinase inhibitor and farnesyl transferase inhibitor at the target site.
- the FLT3 kinase inhibitor and farnesyl transferase inhibitor may be formulated for fast-release or slow-release with the objective of maintaining the drugs or agents in contact with target tissues for a period ranging from hours to weeks.
- compositions comprising the FLT3 kinase inhibitor in association with a pharmaceutically acceptable carrier, and the farnesyl transferase inhibitor in association with a pharmaceutically acceptable carrier may contain between about 0.1 mg and IOOO mg, preferably about 100 to 500 mg, of the individual agents compound, and may be constituted into any form suitable for the mode of administration selected.
- the unitary pharmaceutical composition comprising the FLT3 kinase inhibitor and farnesyl transferase inhibitor in association with a pharmaceutically acceptable carrier may contain between about 0.1 mg and 1000 mg, preferably about 100 to 500 mg, of the compound, and may be constituted into any form suitable for the mode of administration selected.
- phrases “pharmaceutically acceptable” refer to molecular entities and compositions that do not produce an adverse, allergic or other untoward reaction when administered to an animal, or a human, as appropriate.
- Veterinary uses are equally included within the invention and "pharmaceutically acceptable” formulations include formulations for both clinical and/or veterinary use.
- Carriers include necessary and inert pharmaceutical excipients, including, but not limited to, binders, suspending agents, lubricants, flavorants, sweeteners, preservatives, dyes, and coatings.
- Compositions suitable for oral administration include solid forms, such as pills, tablets, caplets, capsules (each including immediate release, timed release and sustained release formulations), granules, and powders, and liquid forms, such as solutions, syrups, elixirs, emulsions, and suspensions.
- Forms ' useful for parenteral administration include sterile solutions, emulsions and suspensions.
- compositions of the present invention may be formulated for slow release of the FLT3 kinase inhibitor and farnesyl transferase inhibitor.
- a composition, unitary or separate includes a slow release carrier (typically, a polymeric carrier) and one, or in the case of the unitary composition, both, of the FLT3 kinase inhibitor and farnesyl transferase inhibitor.
- Slow release biodegradable carriers are well known in the art. These are materials that may form particles that capture therein an active compound(s) and slowly degrade/dissolve under a suitable environment (e.g., aqueous, acidic, basic, etc) and thereby degrade/dissolve in body fluids and release the active compound(s) therein.
- the particles are preferably nanoparticles (i.e., in the range of about 1 to 500 nm in diameter, preferably about 50-200 nm in diameter, and most preferably about 100 nm in diameter).
- farnesyltransferase inhibitors which may be employed in the methods or treatments in accordance with the present invention include the farnesyltransferase inhibitors ("FTIs") of formula (I), (II), (III), (IV), (V), (VI), (VII), (VIII) or (EK) above.
- FTIs farnesyltransferase inhibitors
- Preferred FTIs include compounds of formula (I), (II) or (III):
- X oxygen or sulfur
- R 9 is hydroxy, Ci_6alkyl, Ci_6alkyloxy, amino, Ci-8alkylamino or Ci-galkylamino substituted with Ci-6alkyloxycarbonyl;
- K.2, R3 and R 16 each independently are hydrogen, hydroxy, halo, cyano, Ci- ⁇ alkyl, Ci-galkyloxy, hydroxyCi- ⁇ alkyloxy, Ci- ⁇ alkyloxyCi- ⁇ alkyloxy, aminoCi-6alkyloxy, mono- or di(Ci_6alkyl)aminoCi-6alkyloxy, ArI,
- R ⁇ and R ⁇ each independently are hydrogen, halo, ArI, Ci- ⁇ alkyl, hydroxyCi- 6alkyl, Ci-6alkyloxyCi_6alkyl , Ci_6alkyloxy, Ci_6alkylthio, amino, hydroxycarbonyl, Q-oalkyloxycarbonyl, Ci_6alkylS(O)Ci-6alkyl or Ci- 6alkylS(O)2Ci-6alkyl;
- R" and R ⁇ each independently are hydrogen, halo, cyano, Ci_6alkyl, Ci-6alkyloxy, Ar ⁇ oxy, trihalomethyl, Ci_6alkylthio, di(Ci_6aIkyl)amino, or when on adjacent positions R ⁇ and R ⁇ taken together may form a bivalent radical of formula
- R ⁇ is hydrogen, Ci-6alkyl, cyano, hydroxycarbonyl, Ci_6alkyloxycarbonyl,
- Rl ⁇ is hydrogen, Ci-6alkyl, C ⁇ -6alkylcarbonyl, ArI, Ar 2 Ci-6alkyl, Ci- ⁇ alkyloxycarbonylCi- ⁇ alkyl, or a radical of formula -AIk 2 - ORl3 or -Alk 2 -NRl 4 Rl5;
- 6alkylcarbonyl hydroxy, Ci-6alkyloxy, aminocarbonyl, di(Ci-6alkyl)aminoCi_6alkylcarbonyl, amino, Ci-galkylamino, Ci- ⁇ alkylcarbonylamino, or a radical of formula -Alk 2 -ORl 3 or -Alk 2 -NRl 4 Rl 5 ; wherein AIk 2 is Ci_6alkanediyl;
- R!3 is hydrogen, Ci-6alkyl, Ci-6alkylcarbonyl, hydroxyCi-6alkyl, ArI or Ar 2 Ci -6alkyl
- R!4 is hydrogen, Cl_6alkyl, ArI or Ar 2 Ci_ 6 alkyl
- R!5 is hydrogen, Ci_6alkyl, Ci_6alkylcarbonyl, AJI or Ar 2 Ci-6alkyl
- Rl ⁇ is hydrogen, halo, cyano, C ⁇ -6alkyl, Ci_6alkyloxycarbonyl, ArI; Rl ⁇ is hydrogen, Ci_6alkyl, Ci_6aUcyloxy or halo; R 19 is hydrogen or C i - 6 alkyl ; j
- ArI is phenyl or phenyl substituted with Ci_6alkyl, hydroxy, amino, Ci-6alkyloxy or halo;
- Ar 2 is phenyl or phenyl substituted with Ci_6alkyl, hydroxy, amino, Ci-6alkyloxy or halo.
- R 4 or R ⁇ may also be bound to one of the nitrogen atoms in the imidazole ring. In that case the hydrogen on the nitrogen is replaced by
- R ⁇ or R5 and the meaning of R ⁇ and R ⁇ when bound to the nitrogen is limited to hydrogen, Ar*, Cj-6alkyl, hydroxyCi_6alkyl, Ci-6alkyloxyCi_6alkyl, Ci_ 6alkyloxycarbonyl, Ci_6alkylS(O)Ci-6alkyl, Ci-6alkylS(O)2Ci-6alkyl.
- substituent R ⁇ ⁇ in Formulas (I), (II) and (III) is situated on the 5 or 7 position of the quinolinone moiety and substituent R ⁇ i s situated on the 8 position 1 when RI ⁇ is on the 7-position.
- FTIs are those compounds of formula (I) wherein X is oxygen.
- examples of preferred FTIs are those compounds of formula (I) wherein the dotted line represents a bond, so as to form a double bond.
- Still another group of preferred FTIs are those compounds of formula (I) wherein R ⁇ is hydrogen or halo; and R ⁇ is halo, Ci-6alkyl, C2-6alkenyl, Ci- ⁇ alkyloxy, trihalomethoxy or hydroxyCi- ⁇ alkyloxy.
- a further group of preferred FTIs are those compounds of formula (I) wherein R ⁇ and
- R3 are on adjacent positions and taken together to form a bivalent radical of formula (a-l), (a-2) or (a-3).
- a still further group of preferred FTIs are those compounds of formula (I) wherein R ⁇ is hydrogen and R 4 is hydrogen or Ci_6alkyl.
- Yet another group of preferred FTIs are those compounds of formula (I) wherein R ⁇ is hydrogen; and R ⁇ is Ci- ⁇ alkyl or halo, preferably chloro, especially 4-chloro.
- Another exemplary group of preferred FTIs are those compounds of formula (I) wherein R ⁇ is hydrogen, hydroxy, haloCi-galkyl, hydroxyCi-6alkyl, cyanoCi-6alkyl, Ci-6alkyloxycarbonylCi-6alkyl, imidazolyl, or a radical of formula -NR ⁇ R ⁇ wherein R ⁇ is hydrogen or Ci-i2alkyl and R ⁇ is hydrogen, Ci_6alkyl, Ci-6alkyloxy, hydroxy, Ci- ⁇ alkyloxyCi- ⁇ alkylcarbonyl, or a radical of formula -Alk 2 -OR 13 wherein R 13 is hydrogen or Ci-6alkyl.
- Especially preferred FTIs are:
- I Tipifarnib or ZARNESTRA ® is an especially preferred FTI.
- FTIs include compounds of formula (IX) wherein one or more of the following apply:
- X 1 -X 2 -X 3 is a trivalent radical of formula (x-1), (x-2), (x-3), (x-4) or (x-9) wherein each R 6 independently is hydrogen, C 1-4 alkyl, C 1-4 alkyloxycarbonyl, amino or aryl and R 7 is hydrogen;
- R 1 is halo, C 1-6 alkyl or two R 1 substituents ortho to one another on the phenyl ring may independently form together a bivalent radical of formula (a-1);
- R 11 is hydrogen;
- R 12 is hydrogen, C 1-6 alkyl, C 1-6 alkylcarbonyl, hydroxy, C 1-6 alkyloxy or mono- or di(C 1-6 alkyl)aminoC 1-6 alkylcarbonyl;
- AIk is C 1-6 alkanediyl and R 13 is hydrogen;
- R 4 is a radical of formula (c-1) or (c-2) wherein
- R 16 is hydrogen, halo or mono- or di(C ! . 4 alkyl)ammo
- R is hydrogen or C 1-6 alkyl
- aryl is phenyl
- R is hydrogen, C 1-4 alkyl or phenyl
- R is hydrogen
- R is hydrogen or C 1-4 alkyl
- R 10 is hydrogen or -AIk-OR 13
- R 11 is hydrogen and R 12 is hydrogen or C 1- 6 alkylcarbonyl and R 13 is hydrogen;
- FTI compounds of formula (IX) are: 7-[(4-fluorophenyl)(lH-imida2ol-l-yl)methyl]-5-phenylimidazo[l,2-a]quinoline; a-(4-chlorophenyl)-a-(l-methyl-lH-imidazol-5-yl)-5-phenylimidazo[l,2-a]quinoline-
- the pharmaceutically acceptable acid or base addition salts as mentioned hereinabove are meant to comprise the therapeutically active non-toxic acid and non-toxic base addition salt forms which the FTI compounds of formulas (I), (II), (III), (IV), (V), (VI), (VII), (VIII) or (IX) are able to form.
- the FTI compounds of formulas (I), (II), (III), (IV), (V), (VI), (VII), (VIII) or (IX) which have basic properties can be converted in their pharmaceutically acceptable acid addition salts by treating the base form with an appropriate acid.
- Appropriate acids include, for example, inorganic acids such as hydrohalic acids, e.g.
- hydrochloric or hydrobromic acid sulfuric; nitric; phosphoric and the like acids; or organic acids, such as acetic, propanoic, hydroxyacetic, lactic, pyruvic, oxalic, malonic, succinic (Le. butanedioic acid), maleic, fumaric, malic, tartaric, citric, methanesulfonic, ethanesulfonic, benzenesulfonic, /7-toluenesulfonic, cyclamic, salicylic, ⁇ -aminosalicylic, pamoic and the like acids.
- organic acids such as acetic, propanoic, hydroxyacetic, lactic, pyruvic, oxalic, malonic, succinic (Le. butanedioic acid), maleic, fumaric, malic, tartaric, citric, methanesulfonic, ethanesulfonic, benzenesulfonic,
- the FTI compounds of formulae (I), (II), (III), (IV), (V), (VI), (VII), (VIII) or (IX) which have acidic properties may be converted in their pharmaceutically acceptable base addition salts by treating the acid form with a suitable organic or inorganic base.
- Appropriate base salt forms comprise, for example, the ammonium salts, the alkali and earth alkaline metal salts, e.g. the lithium, sodium, potassium, magnesium, calcium salts and the like, salts with organic bases, e.g. the benzathine, iV-methyl-D- glucamine, hydrabamine salts, and salts with amino acids, for example, arginine, lysine and the like.
- Acid and base addition salts also comprise the hydrates and the solvent addition forms which the preferred FTI compounds of formulae (I), (II), (III), (IV), (V), (VI), (VII), (VIII) or (IX) are able to form.
- Examples of such forms are e.g. hydrates, alcoholates and the like.
- the chemical designation of an FTI compound should be understood as encompassing the mixture of all possible stereochemically isomeric forms which the compound may possess. Such mixture may contain all diastereomers and/or enantiomers of the basic molecular structure of the compound.
- FTI compounds of formulae (I), (II), (III), (IV), (V), (VI), (VII), (VIII) or (IX) may also exist in their tautomeric forms. Such forms, although not explicitly shown in the above formulae, are intended to be included within the scope thereof.
- famesyltransferase inhibitors which can be employed in accordance with the present invention include: Arglabin, perrilyl alcohol, SCH-66336, 2(S)-[2(S)-[2(R)- amino-3-mercapto]propylamino-3(S)-methyl]-pentyloxy-3-phenylpropionyl- methionine sulfone (Merck); L778123, BMS 214662, Pfizer compounds A and B described above.
- Suitable dosages or therapeutically effective amounts for the compounds Arglabin (WO98/28303), perrilyl alcohol (WO 99/45712), SCH-66336 (US 5,874,442), L778123 (WO 00/01691), 2(S)-[2(S)-[2(R)-amino-3- mercapto]propylamino-3(S)-methyl]-pentyloxy-3-phenylpropionyl-methionine sulfone (WO94/10138), BMS 214662 (WO 97/30992), Pfizer compounds A and B (WO 00/12499 and WO 00/12498) are given in the published patent specifications or are known to or can be readily determined by a person skilled in the art.
- FLT3 kinase inhibitors of the present invention comprise compounds of Formula F:
- A is phenyl or pyridyl, either of which may be substituted with one of chforo, fluoro, methyl, -N 3 , -NH 2 , -NH(alkyl), -N(alkyl) 2 , -S(alkyl), -O(alkyl), or 4- aminophenyl;
- W is pyrrolyl (including lH-pyrrol-2-yl), imidazolyl, (including lH-imidazol-2-yl), isoxazolyl, oxazolyl, 1,2,4 triazolyl, or furanyl (including furan-2-yl), any of which may be connected through any carbon atom, wherein the pyrrolyl, imidazolyl, isoxazolyl, oxazolyl, 1,2,4 triazolyl, or furanyl may contain one - Cl, -CN, -NO 2 , -OMe, or -CF 3 substitution, connected to any other carbon;
- R 2 is cycloalkyl (including cyclohexenyl, cyclopentenyl), thiophenyl, dihydrosulfonopyranyl, phenyl, furanyl, tetrahydropyridyl, or dihydropyranyl, any of which may be independently substituted with one or two of each of the following: chloro, fluoro, and C ⁇ alkyl (including 4,4-dimethyl cyclohexenyl, 4-methyl cyclohexenyl, 2-methyl thiophenyl, 3 -methyl thiophenyl), with the proviso that tetrahydropyridyl is connected to the ring A through a carbon-carbon bond;
- D 1 and D 2 are each hydrogen or taken together form a double bond to an oxygen
- D 3 and D 4 are each hydrogen or taken together form a double bond to an oxygen
- D 5 is hydrogen or -CH 3 , wherein said -CH 3 may be relatively oriented syn or and;
- R 0 and R b are independently hydrogen, cycloalkyl, haloalkyl, aryl, aralkyl, heteroaryl, or heteroaralkyl;
- Q a is absent, -CH 2 -, -CH 2 CH 2 -, or C(O);
- Q b is absent, -NH-, -CH 2 -, -CH 2 CH 2 -, or C(O), with the proviso that Q b may not be C(O) if Q a is C(O), and further provided that Q b may not be - NH- if E is N and Q a is absent, further provided that Q b may not be - NH- if R 3 is an amino group or cyclic amino radical wherein the point of attachment to Q b is N;
- R 3 is hydrogen, phenyl, hydroxyalkylamino (including 2-hydroxy ethylamino), (hydroxyalkyl) 2 amino, hydroxyalkyl(alkyl)amino (including l-hydroxyeth-2-yl(methyl)amino), alkylamino (including methylamino), aminoalkyl (including 2-amino isopropyl), dihydroxyalkyl (including 1,3-dihydroxy isopropyl, 1,2-dihydroxy ethyl), alkoxy (including methoxy), dialkylamino (including dimethylamino), hydroxyalkyl (including 1-hydroxy eth-2-yl), - COOH, -CONH 2 , -CN, -SO 2 -alkyl-R 4 (including -SO 2 CH 3 ), -NH 2 , or a
- 5 or six membered ring which contains at least one heteroatom N and may optionally contain an additional heteromoiety selected from S, SO 2 , N, and O
- the 5 or 6 membered ring may be saturated, partially unsaturated or aromatic (including piperidinyl, morpholinyl, imidazolyl, and pyridyl) wherein aromatic nitrogen in the 5 or 6 membered ring may be present as iV-oxide (including pyridyl N-oxide), and the 5 or 6 membered ring may be optionally substituted with methyl, halogen, alkylamino, or alkoxy (including 1 methyl imidazolyl); R may also be absent, with the proviso that R is not absent when E is nitrogen;
- R 4 is hydrogen, -OH, alkoxy, carboxy, carboxamido, or carbamoyl.
- Embodiments of the FLT3 inhibitors of the present invention include compounds of Formula I' wherein:
- A is phenyl or pyridyl, either of which may be substituted with one of chloro, fluoro, methyl, -N 3 , -NH 2 , -NH(alkyl), -N(alkyl) 2 , -S(alkyl), -O(alkyl), or 4- aminophenyl;
- A is phenyl ;
- W is pyrrolyl (including lH-pyrrol-2-yl), imidazolyl, (including lH-imidazol-2-yl), isoxazolyl, oxazolyl, 1,2,4 triazolyl, or furanyl (including furan-2-yl), any of which may be connected through any carbon atom, wherein the pyrrolyl, imidazolyl, isoxazolyl, oxazolyl, 1,2,4 triazolyl, or furanyl may contain one - Cl, -CN, -NO 2 , -OMe
- R 2 is cycloalkyl (including cyclohexenyl, cyclopentenyl), thiophenyl, dihydrosulfonopyranyl, phenyl, furanyl, tetrahydropyridyl, or dihydropyranyl, any of which may be independently substituted with one or two of each of the following: chloro, fluoro, and C (1-3 )alkyl (including 4,4-dimethyl cyclohexenyl, 4-methyl cyclohexenyl, 2-methyl thiophenyl, 3-methyl thiophenyl), with the proviso that tetrahydropyridyl is connected to the ring A through a carbon-carbon bond; h) R 2 is cycloalkyl (including cycloalkyl (including cyclohexenyl, cyclopentenyl), thiophenyl, dihydrosulfonopyranyl, phenyl, furanyl,
- D 1 and D 2 are each hydrogen or taken together form a double bond to an oxygen; r) D 1 and D 2 are each hydrogen; s) D 3 and D 4 are each hydrogen or taken together form a double bond to an oxygen; t) D 3 and D 4 are each hydrogen; u) D 5 is hydrogen or -CH 3 , wherein said -CH 3 may be relatively oriented syn or and;
- R a and R b are independently hydrogen, cycloalkyl, haloalkyl, aryl, aralkyl, heteroaryl, or heteroaralkyl; w) E is J
- Q b is absent, -NH-, -CH 2 -, -CH 2 CH 2 -, or C(O), with the proviso that Q b may not be
- R 3 may also be absent, with the proviso that R 3
- R 3 is alkylamino (including methylamino), dialkylamino (including dimethylamino), or -SO 2 -alkyl-R 4 (including -SO 2 CH 3 ); ii) R 3 is methylamino, dimethylamino, or - -SO 2 CH 3 ; jj) R 3 is dimethylamino; kk) R 4 is hydrogen, -OH, alkoxy, carboxy, carboxamido, or carbamoyl; and 11) R 4 is hydrogen; and all combinations of a) to U), inclusive, herein above.
- Preferred FLT3 inhibitors of the present invention include compounds of Formula I' wherein W is substituted with one -CN.
- FLT3 inhibitors of the present invention include compounds of
- A is pyridyl, which may be substituted with one of chloro, fluoro, methyl, -N 3 , -NH 2 , - NH(alkyl), -N(alkyl) 2 , -S(alkyl), -O(alkyl), or 4-aminophenyl;
- W is imidazolyl, (including lH-imidazol-2-yl), which may contain one -CN;
- R 2 is cycloalkyl
- FLT3 inhibitor compounds of Formula I' are those wherein: A is phenyl which may be substituted with one of chloro, fluoro, or methyl; X is
- D 3 and D 4 are hydrogen
- R 3 is hydrogen, piperidinyl, alkylamino, dialkylamino, hydroxyalkylamino, (hydroxyalkyl) 2 amino, imidazolyl, 1-methyl imidazolyl, pyridyl, pyridyl N- oxide, hydroxyalkyl, -COOH, -CONH 2 , -CN, -SO 2 CH 3 , -NH 2 , morpholinyl; R may also be absent, with the proviso that R is not absent when E is nitrogen.
- FLT3 inhibitor compounds of Formula I' are those wherein:
- A is phenyl
- W is furan-2-yl, lH-pyrrol-2-yl, or lH-imidazol-2-yl, any of which may be substituted at the 4 or 5 carbons with -CN;
- R 2 is cycloalkyl, dihydrosulfonopyranyl, phenyl, furanyl, tetrahydropyridyl, or dihydropyranyl, any of which may be independently substituted with one or two of each of the substituents selected from the group consisting of chloro, fluoro, and C ⁇ alkyl, with the proviso that tetrahydropyridyl must be connected to the ring A through a carbon-carbon bond.
- FLT3 inhibitor compounds of Formula I' are those wherein:
- R 2 is cyclohexenyl, or cyclopentenyl, either of which may be substituted with chloro, fluoro or one two C( 1-3 )alkyl groups; '
- Especially preferred FLT3 inhibitor compounds of Formula I' are those wherein:
- W is imidazolyl, (including lH-imidazol-2-yl), 1,2,4 triazolyl, or furanyl (including furan-2-yl), any of which may be connected through any carbon atom, wherein the imidazolyl, 1,2,4 triazolyl, or furanyl may contain one -Cl or -CN, connected to any other carbon;
- R 2 is cycloalkyl (including C (1-3) alkyl substituted cycloalkyl, further including Q 1- 3) alkyl substituted cyclopentenyl, and C ⁇ alkyl substituted cyclohexenyl, further including 4-methyl cyclohexenyl), Q 1-3 )dialkyl substituted cycloalkyl
- R 3 is hydrogen, phenyl, hydroxyalkylamino (including 2-hydroxy ethylamino), hydroxyalkyl(alkyl)amino (including 1 -hydroxyeth-2-yl(methyl)amino), alkylamino (including methylamino), aminoalkyl (including 2-amino isopropyl), dihydroxyalkyl (including 1,3-dihydroxy isopropyl, 1,2-dihydroxy ethyl), alkoxy (including methoxy), dialkylamino (including dimethylamino), hydroxyalkyl (including 1-hydroxy eth-2-yl), -COOH, -CONH 2 , -CN, - SO 2 CH 3 , -NH 2 , or a 5 or six membered ring selected from the group consisting of: piperidinyl, morpholinyl, imidazolyl, and pyridyl, wherein the 5 or 6 membered ring may be optionally substituted with methyl
- FLT3 inhibitor compounds of Formula I' are those wherein:
- Q 3 is CO; and R 3 is hydrogen, piperidinyl, hydroxyalkylamino, (hydroxyalkyl) 2 amino, alkylamino, dialkylamino, imidazolyl, 1 -methyl imidazolyl, pyridyl, pyridyl iV-oxide, hydroxyalkyl, -COOH, -CONH 2 , -CN, -SO 2 CH 3 , -NH 2 , morpholinyl.
- FLT3 inhibitor compounds of Formula I' include:
- FLT3 inhibitor compounds of Formula I'in include:
- FLT3 inhibitor compounds of Formula I' are: 4-cyano-lH-imidazole-2-carboxylic acid ⁇ 2-cyclohex-l-enyl-4-[l-(l-oxy-pyridine-3- carbonyl)-piperidin-4-yl] -phenyl ⁇ -amide,
- FLT3 inhibitor compound of Formula I' is: '
- FLT3 inhibitor compound of Formula I' is:
- FLT3 inhibitor compounds of Formula I' are:
- Additional FLT3 inhibitor compound of Formula Fare 4-Cyano-lH-imidazole-2-carboxylic acid ⁇ 2-cyclohex-l-enyl-4-[l-(2-methylamino- acetyl)-pi ⁇ eridin-4-yl]-phenyl ⁇ -amide,
- alkyl refers to both linear and branched chain radicals of up to 12 carbon atoms, preferably up to 6 carbon atoms, unless otherwise indicated, and includes, but is not limited to, methyl, ethyl, propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, pentyl, isopentyl, hexyl, isohexyl, heptyl, octyl, 2,2,4-trimethylpentyl, nonyl, decyl, undecyl and dodecyl.
- hydroxyalkyl refers to both linear and branched chain radicals of up to 6 carbon atoms, in which one hydrogen atom has been replaced with an OH group.
- hydroxyalkylamino refers to an hydroxyalkyl group in which one hydrogen atom from the carbon chain has been replaced with an amino group, wherein the nitrogen is the point of attachment to the rest of the molecule.
- cycloalkyl refers to a saturated or partially unsaturated ring composed of from 3 to 8 carbon atoms. Up to four alkyl substituents may optionally be present on the ring. Examples include cyclopropyl, 1,1 -dimethyl cyclobutyl, 1,2,3- trimethylcyclopentyl, cyclohexyl, cyclopentenyl, cyclohexenyl, and 4,4-dimethyl cyclohexenyl.
- dihydrosulfonopyranyl refers to the following radical:
- hydroxyalkyl refers to at least one hydroxyl group bonded to any carbon atom along an alkyl chain.
- aminoalkyl refers to at least one primary or secondary amino group bonded to any carbon atom along an alkyl chain, wherein an alkyl group is the point of attachment to the rest of the molecule.
- alkylamino refers to an amino with one alkyl substituent, wherein the amino group is the point of attachment to the rest of the molecule.
- dialkylamino refers to an amino with two alkyl substituents, wherein the amino group is the point of attachment to the rest of the molecule.
- heteroaryl refers to 5- to 7-membered mono- or 8- to 10-membered bicyclic aromatic ring systems, any ring of which may consist of from one to four heteroatoms selected from N, O or S where the nitrogen and sulfur atoms can exist in any allowed oxidation state.
- Examples include benzimidazolyl, benzothiazolyl, benzothienyl, benzoxazolyl, furyl, imidazolyl, isothiazolyl, isoxazolyl, oxazolyl, pyrazinyl, pyrazolyl, pyridyl, pyrimidinyl, pyrrolyl, quinolinyl, thiazolyl and thienyl.
- heteroatom refers to a nitrogen atom, an oxygen atom or a sulfur atom wherein the nitrogen and sulfur atoms can exist in any allowed oxidation states.
- alkoxy refers to straight or branched chain radicals of up to 12 carbon atoms, unless otherwise indicated, bonded to an oxygen atom. Examples include methoxy, ethoxy, propoxy, isopropoxy and butoxy.
- aryl refers to monocyclic or bicyclic aromatic ring systems containing from 6 to 12 carbons in the ring. Alkyl substituents may optionally be present on the ring. Examples include benzene, biphenyl and napththalene.
- aralkyl refers to a C 1-6 alkyl group containing an aryl substituent. Examples include benzyl, phenylethyl or 2-naphthylmethyl.
- sulfonyl refers to the group -S(O) 2 R a , where R a is hydrogen, alkyl, cycloalkyl, haloalkyl, aryl, aralkyl, heteroaryl and heteroaralkyl.
- a "sulfonylating agent” adds the -S(O) 2 R 3 group to a molecule.
- the FLT3 inhibitors of Formula I' may also be present in the form of pharmaceutically acceptable salts.
- the salts of the compounds of the FLT3 inhibitors of Formula I' refer to non-toxic "pharmaceutically acceptable salts.”
- FDA approved pharmaceutically acceptable salt forms include pharmaceutically acceptable acidic/anionic or basic/cationic salts.
- Pharmaceutically acceptable acidic/anionic salts include, and are not limited to acetate, benzenesulfonate, benzoate, bicarbonate, bitartrate, bromide, calcium edetate, camsylate, carbonate, chloride, citrate, dihydrochloride, edetate, edisylate, estolate, esylate, fumarate, glyceptate, gluconate, glutamate, glycollylarsanilate, hexylresorcinate, hydrabamine, hydrobromide, hydrochloride, hydroxynaphthoate, iodide, isethionate, lactate, lactobionate, malate, maleate, mandelate, mesylate, methylbromide, methylnitrate, methylsulfate, mucate, napsylate, nitrate, pamoate, pantothenate, phosphate/diphosphate, polygalacturonate,
- Organic or inorganic acids also include, and are not limited to, hydriodic, perchloric, sulfuric, phosphoric, propionic, glycolic, methanesulfonic, hydroxyethanesulfonic, oxalic, 2-naphthalenesulfonic, p-toluenesulfonic, cyclohexanesulfamic, saccharinic or trifluoroacetic acid.
- Pharmaceutically acceptable basic/cationic salts include, and are not limited to aluminum, 2-amino ⁇ 2-hydroxymethyl-propane-l,3-diol (also known as tris(hydroxymethyl)aminomethane, tromethane or "TRIS”), ammonia, benzathine, t-butylamine, calcium, calcium gluconate, calcium hydroxide, chloroprocaine, choline, choline bicarbonate, choline chloride, cyclohexylamine, diethanolamine, ethylenediamine, lithium, LiOMe, L-lysine, magnesium, meglumine, NH 3 , NH 4 OH, N-methyl-D-glucamine, piperidine, potassium, potassium- ⁇ -butoxide, potassium hydroxide (aqueous), procaine, quinine, sodium, sodium carbonate, sodium-2-ethylhexanoate (SEH), sodium hydroxide, triethanolamine (TEA) or zinc.
- TIS triethanolamine
- the FLT3 inhibitors of the present invention includes within its scope prodrugs of the compounds of Formula I'.
- prodrugs will be functional derivatives of the compounds which are readily convertible in vivo into an active compound.
- the term “administering” shall encompass the means for treating, ameliorating or preventing a syndrome, disorder or disease described herein with a compound specifically disclosed or a compound, or prodrug thereof, which would obviously be included within the scope of the invention albeit not specifically disclosed for certain of the instant compounds.
- Conventional procedures for the selection and preparation of suitable prodrug derivatives are described in, for example, "Design of Prodrugs", ed. H. Bundgaard, Elsevier, 1985.
- the FLT3 inhibitors of Formula I' may have one or more asymmetric carbon atoms in their structure. It is intended that the present invention include within its scope single enantiomer forms of the compounds, racemic mixtures, and mixtures of enantiomers in which an enantiomeric excess is present.
- single enantiomer as used herein defines all the possible homochiral forms which the compounds of Formula I' and their N-oxides, addition salts, quaternary amines or physiologically functional derivatives may possess.
- Stereochemically pure isomeric forms may be obtained by the application of art known principles. Diastereoisomers may be separated by physical separation methods such as fractional crystallization and chromatographic techniques, and enantiomers may be separated from each other by the selective crystallization of the diastereomeric salts with optically active acids or bases or by chiral chromatography. Pure stereoisomers may also be prepared synthetically from appropriate stereochemically pure starting materials, or by using stereoselective reactions.
- isomer refers to compounds that have the same composition and molecular weight but differ in physical and/or chemical properties. Such substances have the same number and kind of atoms but differ in structure. The structural difference may be in constitution (geometric isomers) or in an ability to rotate the plane of polarized light (enantiomers).
- stereoisomer refers to isomers of identical constitution that differ in the arrangement of their atoms in space. Enantiomers and diastereomers are examples of stereoisomers.
- chiral refers to the structural characteristic of a molecule that makes it impossible to superimpose it on its mirror image.
- enantiomer refers to one of a pair of molecular species that are mirror images of each other and are not superimposable.
- diastereomer refers to stereoisomers that are not mirror images.
- racemate or “racemic mixture” refers to a composition composed of equimolar quantities of two enantiomeric species, wherein the composition is devoid of optical activity.
- homochiral refers to a state of enantiomeric purity.
- optical activity refers to the degree to which a homochiral molecule or nonracemic mixture of chiral molecules rotates a plane of polarized light.
- geometric isomer refers to isomers that differ in the orientation of substituent atoms in relationship to a carbon-carbon double bond, to a cycloalkyl ring or to a bridged bicyclic system.
- Substituent atoms (other than H) on each side of a carbon-carbon double bond may be in an E or Z configuration. In the “E” (opposite sided) configuration, the substituents are on opposite sides in relationship to the carbon- carbon double bond; in the "Z" (same sided) configuration, the substituents' are oriented on the same side in relationship to the carbon-carbon double bond.
- Substituent atoms (other than hydrogen) attached to a carbocyclic ring may be in a cis or trans configuration.
- the substituents are on the same side in relationship to the plane of the ring; in the "trans” configuration, the substituents are on opposite sides in relationship to the plane of the ring.
- Compounds having a mixture of "cis” and “trans” species are designated "cis/trans”.
- the FLT3 inhibitors of Formula I' may be prepared as individual isomers by either isomer-specific synthesis or resolved from an isomeric mixture.
- Conventional resolution techniques include forming the free base of each isomer of an isomeric pair using an optically active salt (followed by fractional crystallization and regeneration of the free base), forming an ester or amide of each of the isomers of an isomeric pair (followed by chromatographic separation and removal of the chiral auxiliary) or resolving an isomeric mixture of either a starting material or a final product using preparative TLC (thin layer chromatography) or a chiral HPLC column.
- the FLT3 inhibitors of Formula I' may have one or more polymorph or amorphous crystalline forms and as such are intended to be included in the scope of the invention.
- some of the compounds may form solvates with water (i.e., hydrates) or common organic solvents, and such are also intended to be encompassed within the scope of this invention.
- the FLT3 inhibitors of Formula I' may be converted to the corresponding N-oxide forms following art-known procedures for converting a trivalent nitrogen into its N- oxide form.
- Said N-oxidation reaction may generally be carried out by reacting the starting material of Formula I' with an appropriate organic or inorganic peroxide.
- Appropriate inorganic peroxides comprise, for example, hydrogen peroxide, alkali metal or earth alkaline metal peroxides, e.g. sodium peroxide, potassium peroxide;
- appropriate organic peroxides may comprise peroxy acids such as, for example, benzenecarboperoxoic acid or halo substituted benzenecarboperoxoic acid, e.g.
- Suitable solvents are, for example, water, lower alcohols, e.g. ethanol and the like, hydrocarbons, e.g. toluene, ketones, e.g. 2-butanone, halogenated hydrocarbons, e.g. dichloromethane, and mixtures of such solvents.
- FLT3 inhibitors of Formula I' may also exist in their tautomeric forms. Such forms although not explicitly indicated in the present application are intended to be included within the scope of the present invention.
- Scheme 1 illustrates general methodology for the preparation of the FLT3 inhibitor compounds of Formula I' .
- Compounds of Formula 1-2 can be obtained by ortho- halogenation, preferably bromination, of amino compounds of Formula 1-1 followed by metal-catalyzed coupling reactions with boronic acids or boronate esters ⁇ Suzuki reactions, where R M is R B(OH) 2 or a boronic ester) or tin reagents (Stille reactions, where R 2 M is R 2 Sn(alkyl) 3 ) (for reviews, see N. Miyaura, A. Suzuki, Chem. Rev., 95:2457 (1995), J. K. Stille, Angew. Chem, Int. Ed.
- N-bromosuccinimide N-bromosuccinimide
- DMF ⁇ N-dimethylformamide
- DCM dichloromethane
- Metal-catalyzed couplings can be performed according to standard methodology, preferably in the presence of a palladium catalyst such as tetrakis(triphenylphosphine)palladium(0) (Pd(PPli 3 ) 4 ), an aqueous base such aq. Na 2 CO 3 , and a suitable solvent such as toluene, ethanol, dimethoxyethane (DME), or DMF.
- a palladium catalyst such as tetrakis(triphenylphosphine)palladium(0) (Pd(PPli 3 ) 4 )
- an aqueous base such as aq. Na 2 CO 3
- a suitable solvent such as toluene, ethanol, dimethoxyethane (DME), or DMF.
- the FLT3 inhibitor compounds of Formula I' can be prepared by reaction of compounds of Formula 1-2 with carboxylic acids WCOOH according to standard procedures for amide bond formation (for a review, see: M. Bodansky and A. Bodansky, The Practice of Peptide Synthesis, Springer- Verlag, NY (1984)) or by reaction with acid chlorides WCOCl or activated esters WCO 2 Rq (where Rq is a leaving group such as pentafluorophenyl or N-succinimide).
- the preferred reaction conditions for coupling with WCOOH are: when W is a furan, oxalyl chloride in DCM with DMF as a catalyst to form the acid chloride WCOCl and then coupling in the presence of a trialkylamine such as DIEA; when W is a pyrrole, l-(3- dimethylaminopropyl)-3-ethylcarbodiimide hydrochloride (EDCI) and 1- hydroxybenzotriazole-6-sulfonamidomethyl hydrochloride (HOBt); and when W is an imidazole, the preferred conditions are bromotripynOlidinophos-phonium hexafluorophosphate (PyBrOP) and diisopropylethylamine (DIEA) in DCM.
- a trialkylamine such as DIEA
- EDCI l-(3- dimethylaminopropyl)-3-ethylcarbodiimide hydrochloride
- various substituents on compounds of Formula I' may be introduced in a number of ways described below to provide the optional substitution listed for the FLT3 inhibitor compounds of Formula I'.
- the leaving group "L 1 " present on ring A in Formula 1-0 or 1-3 can be substituted before or at any step during Scheme 1.
- leaving groups preferably fluoro or chloro
- they can undergo direct nucleophilic aromatic substitution by ammonia and azide anion or by amines, alcohols, thiols and other nucleophiles in the presence of a suitable base such as K 2 CO 3 , N,N- diisopropylethylamine (DIEA) or NEt 3 .
- the leaving group is suitable for metal- catalyzed couplings (preferably bromo or trifluoromethane-sulfonyloxy)
- a number of cross-coupling reactions may be performed.
- Other metal-catalyzed coupling reactions include aromatic and heteroaromatic amination and amidation.
- the initial substituents can be further derivatized as described below to provide the final substitution of the FLT3 inhibitor compounds of Formula F.
- An alternative method for the introduction of nitrogen-containing heterocyclic substituents onto ring A is to form the heterocycle from an amino group on ring A.
- the amino group may be originally present in the starting material in a protected or unprotected form or may result from the reduction of a nitro group which also can be either originally present in the starting material or attached by a nitration reaction.
- the amino group may be formed by reduction of an azide group which can be present in the starting material or may result from nucleophilic aromatic substitution of an activated halide by azide anion as mentioned above.
- the amino group may also result from nucleophilic aromatic substitution of an activated halide (in, for example a nitrohalo compound) by ammonia or by the anion of a protected ammonia equivalent, for example, t-butyl carbamate.
- an activated halide in, for example a nitrohalo compound
- a protected ammonia equivalent for example, t-butyl carbamate.
- the amine can be deprotected according to standard literature methods. For examples of amine protecting groups and deprotection methods, see Theodora W. Greene and Peter G. M. Wuts, John Wiley and Sons, Inc., NY (1991).
- the ring-forming reaction involves treatment of the aniline amino group with a suitable optionally substituted di- electrophile, preferably a dihalide or dicarbonyl compound, which results in two substitutions on the amino group to form an optionally substituted heterocycle.
- a suitable optionally substituted di- electrophile preferably a dihalide or dicarbonyl compound
- any of a number of suitable bases can be added as an acid scavenger such as potassium carbonate, sodium hydroxide, or, a trialkylamine such as triethylamine.
- an acid scavenger such as potassium carbonate, sodium hydroxide, or, a trialkylamine such as triethylamine.
- a bis(2-haloethyl)amine such as bis(2- chloroethyl)amine or bis(2-bromoethyl)amine would afford a piperazine ring (see, e.g., J. Med.
- Another alternative method to direct substitution to introduce heterocyclic substituents onto ring A is to form the heterocycle from an aldehyde (i.e. from a formyl group on ring A).
- the formyl group may be originally present in the starting material in a protected or unprotected form or may result from any of a number of formylation reactions known in the literature including a Vilsmeier-Haack reaction
- formylation chemistry see, G. A. Olah, et al, Chem Rev., 87: (1987)
- para-formylation of nitroaromatics see, e.g., A. Katritsky and L. Xie, Tetrahedron Lett., 37:347-50 (1996).
- the FLT3 inhibitor compounds of Formula I' may be further derivatized.
- Protecting groups on the FLT3 inhibitor compounds of Formula I' can be removed according to standard synthetic methodologies (see, e.g., Theodora W. Greene and Peter G. M. Wuts, John Wiley and Sons, Inc., NY (1991)) and can be then subjected to further derivatization.
- Examples of further derivatization of the FLT3 inhibitor compounds of Formula I'in include, but are not limited to: when compounds of Formula I' contain a primary or secondary amine, the amine may be reacted with aldehydes or ketones in the presence of a reducing agent such as sodium triacetoxyborohydride (see, Abdel-Magid J.Org. Chem. 61, pp.
- the FLT3 inhibitor compounds of Formula I' may be subjected to metal-catalyzed reactions with boronic acids (for example, Suzuki or Stille couplings as described above), or, amines or alcohols (Buchwald- or Hartwig-type couplings, see Buchwald and Hartwig references above).
- boronic acids for example, Suzuki or Stille couplings as described above
- amines or alcohols Buchwald- or Hartwig-type couplings, see Buchwald and Hartwig references above.
- the FLT3 inhibitor compounds of Formula I' contain a cyano group, this group may be hydrolyzed to amides or acids under acid or basic conditions.
- Basic amines may be oxidized to N-oxides and conversely N-oxides may be reduced to basic amines.
- compounds of Formula I 'contain a sulfide either acyclic or cyclic
- the sulfide can be further oxidized to the corresponding sulfoxides or sul
- Sulfoxides can be obtained by oxidation using an appropriate oxidant such as one equivalent of (/raet ⁇ -chloroperbenzoicacid) MCPBA or by treatment with NaIO 4 ⁇ see, e.g., , J. Regan, et al, J. Med. Chem., 46: 4676-86 (2003)) and sulfones can be obtained using two equivalents of MCPBA or by treatment with 4-methylmorpholine N-oxide and catalytic osmium tetroxide (see, e.g., PCT application WO 01/47919). '
- Scheme 2a illustrates a route to FLT3 inhibitor compounds of Formula I'.
- F represents -NQ a Q b R 3 -, -O-, S, SO, or SO 2
- AA represents -NH 2 or -NO 2 .
- D 1 and D 2 are shown for illustrative purposes only; it is recognized by those skilled in art that D 5 D 6 D 7 D 8 may also be present.
- Ketones of formula 2-1 can be converted to a vinyl triflate of formula 2-2 by treatment with a non-nucleophilic base such as LDA and then trapping of the resulting enolate with a triflating reagent such as trifluoromethanesulfonic anhydride or preferably N- phenyltrifluoromethanesulfonimide.
- a triflating reagent such as trifluoromethanesulfonic anhydride or preferably N- phenyltrifluoromethanesulfonimide.
- Compounds of formula 2-5 may be further modified to provide additional FLT3 inhibitor compounds of Formula I'.
- F is -NQ a Qj 3 R 3 -
- Q a Q b is a direct bond
- R 3 represents a BOC protecting group (CO 2 tBu)
- the BOC group may be removed according to standard methodology such as trifluoroactic acid (TFA) in DCM (Greene and Wuts, ibid.) to provide a secondary amine that can then be further derivatized to provide FLT3 inhibitor compounds of Formula I' .
- TFA trifluoroactic acid
- DCM Greene and Wuts, ibid.
- Further derivatization includes, but is not limited to: reactions with aldehydes or ketones in the presence of a reducing agent such as sodium triacetoxyborohydride to provide FLT3 inhibitor compounds of Formula II' where F is -NCH 2 R 3 (A. F.
- R a and R b are independently hydrogen, alkyl, cycloalkyl, haloalkyl, aryl, aralkyl, heteroaryl and heteroaralkyl.
- Scheme 2b illustrates a modification of Scheme 2a to synthesize partially unsaturated FLT3 inhibitor compounds of Formula I'.
- E represents -NQ 3 Q b R -, -O- (D and D are H), -S- (D 1 and D 2 are H), -(D 1 and D 2 are H), or -SO 2 - (D 1 and D 2 are H), and R A A represents -NH 2 or -NO 2 .
- Compounds of formula 2-4 are prepared as shown in Scheme 2. If RAA is -NO 2 , the nitro group must be reduced by a method that does not reduce olefins, such as iron and ammonium chloride.
- RAA of formula 2-4 is an amino group then no step is necessary and compounds of formula 2-4 are also compounds of formula 2-7.
- E is -SO 2 - or -SO-
- the oxidation of the sulfide must be performed on compound 2-4 where RA A is -NO 2 as described above, followed by nitro reduction.
- Scheme 3 illustrates the preparation of intermediates for the synthesis of FLT3 inhibitor compounds of Formula I', where ring A is pyridyl, and R 5 is the optional substitution on ring A or one of the heterocyclic substituents as defined in Formula I'.
- K is ISfH 2 or other functional groups such as NO 2 , COOH or COOR which can eventually be converted to amino group by known literature methods such as reductions for NO 2 (as discussed for Scheme 1) or Curtius rearrangement for COOH
- COOH can also be formed from K is COOR by simple base- or acid-catalyzed hydrolysis.
- the selectivity and order in introducing R and R can be achieved by the relative reactivity of the halogens L 3 and L 4 chosen in compound (3-1), the intrinsic selectivity of the heterocycle and/or the reaction conditions employed.
- An example of using the relative reactivity of the halogens L 3 and L 4 in selectively introducing R 2 and R would include the situation where, in compounds of Formula 3-1 where L is a fluoro group and L 4 is a bromo group, selective displacement of the fluoro group by a nucleophile can be achieved followed by substitution of the remaining bromo group by metal-catalyzed substitution chemistry (such as Suzuki or Stille cross-coupling reactions as further outlined below).
- a direct nucleophilic displacement or metal-catalyzed amination of compound of Formula 3-1 with a secondary amine, ammonia or a protected amine such as tert- butyl carbamate can be used to introduce R 5 in Formulae 3-2 or 3-3 where R 5 is a primary or secondary amine, amino group (NH 2 ), and amine equivalent or a protected amino group.
- Compound 3-2 can be further converted to compound 3-4 by a metal-catalyzed Suzuki or Stille coupling as described above.
- L 4 in compound 3-3 also subsequently can be substituted with R 5 to obtain compounds of Formula 3-4, again, by a direct nucleophilic substitution or metal-catalyzed reaction with a nucleophile or by the same metal-catalyzed cross-coupling reaction as described above.
- R 5 in the formulae (3-2, 3-3 or 3-4) is a protected amine and K not an amino group, it can be deprotected to unmask the amino functionality. This amino functionality can then be further derivatized as described in Scheme 1.
- K group in Formula 3-4 is not an amino group (such as functionality described above), it can be converted to an amino group according to known literature methods (see, for example Comprehensive Organic Transformations: Larock, R.S.; Wiley and Sons Inc., USA, 1999) and the resulting amine 3-5 can be employed in amide bond formation reactions as described in Scheme (1) to obtain the FLT3 inhibitor compounds of Formula I'.
- K in Formula 3-4 is an amino group it can be directly used in amide coupling as described above.
- Schemes 4a and 4b illustrate the preparation of intermediates to be further modified according to Scheme 3 starting from a monohalo-substituted compound of Formulae 4-1 and 4-5 by introducing the second leaving group after the replacement of the first one has been completed.
- These can also be used for the synthesis of FLT3 inhibitor compounds of Formula I' where ring A is a pyridine and R 5 is either the optional substitution on Ring A or one of the heterocyclic substituents.
- the remaining positions on the pyridine ring can be substituted as described in Formula F.
- K is NH 2 or other functional groups such as NO 2 , COOH or COOR which can eventually be converted to amino group by known literature methods such as reductions or Curtius rearrangement as described in Scheme 3.
- L and L 4 are halogens.
- T is either H or is a functional group such as OH that can be converted to leaving groups L 3 or L 4 such as halogen, triflate or mesylate by known literature methods (see, for example, Nicolai, E., et al., J. Heterocyclic Chemistry, 31, (73), (1994)).
- Displacement of L 3 in compound of Formula 4-1 or L 4 in Formula 4-5 by methods described in Scheme 3 can yield compounds of Formulae 4-2 and 4-6.
- the substituent T of compounds 4-2 or 4-6 can be converted to a leaving group L 4 or L 3 (preferably a halogen) by standard methods to provide compounds of Formulae 4-3 and 4-5.
- T when T is OH, the preferred reagents to effect this transformation are thionyl chloride, PCl 5 , POCl 3 or PBr 3 (see, for examples, Kolder, den Hertog., Reel. Trav. Chim. Pays-Bas; 285, (1953), and Iddon, B, et. al., /. Chem. Soc. Perkin Trans. 1., 1370, (1980)).
- T can be directly halogenated (preferably brominated) to provide compounds of Formulae 4-3 or 4-7 (see, for example, Canibano, V. et al., Synthesis, 14, 2175, (2001)).
- the preferred conditions for bromination are NBS in a suitable solvent such as DCM or acetonitrile.
- the compounds of Formulae 4-3 or 4-7 can be converted to compounds of Formulae 4-4 or 4-8 by introduction of the remaining groups R 2 or R 5 , respectively, by the methods described above and then on to FLT3 inhibitor compounds of Formula I', by the methods described in Scheme 3 for conversion of compounds of Formulae 3-4 and
- FLT3 inhibitors of Formula I' synthesized by the aforementioned methods are in the following chart and examples thereafter. The following are for exemplary purposes only and are in no way meant to limit the invention.
- Preferred compounds of the present invention are Examples 5, 17, 23, 34, 38, and 51.
- step (c) 4-(4- methyl-piperazin-l-yl)-2-(3-methyl-thiophen-2-yl)-phenylamine (40 mg, 0.13 mmol) was allowed to react with 5-cyano-furan-2-carbonyl chloride (30 mg, 0.19 mmol, as prepared in Example 9, step (c)) in the presence of DIEA (61 ⁇ L, 0.34 mmol) to afford 18.9 mg (36 %) of the title compound as a yellow solid.
- step (b) 3-bromo-4-methylthiophene (571 mg, 3.2 mmol) was treated with n-BuLi (1.41 mL, 2.5M/hexanes) and then allowed to react with 2-isopro ⁇ oxy-4,4,5,5-tetramethyl-[l,3,2]dioxaborolane (775 ⁇ L, 3.8 mmol) to afford 189 mg (26 %) of the title compound as a colorless oil.
- step (c) l-(3-bromo-4-nitro-phenyl)-4- methyl-piperazine (162 mg, 0.54 mmol), 4,4,5,5-tetramethyl-2-(2-methyl-thiophen-3- yl)-[l,3,2]dioxaborolane (145 mg, 0.64 mmol) and Pd(PPh 3 ) 4 (37 mg, 6 mol %) were allowed to react to afford 108 mg (71%) of the title compound as a yellow solid.
- step (d) l-methyl-4-[3-(4-methyl-thiophen- 3-yl)-4-nitro-phenyl]-piperazine (100 mg, 0.32 mmol) was stirred with 80 mg 5 % Pd-C under H 2 to afford 82 mg ⁇ 89 %) of the title compound as a dark oil, which was used immediately without further purification spectrum (ESI, m/z): Calcd. for C 16 H 21 N 3 S, 288.15 (M+H), found 288.1.
- step (c) 5-cyano-furan-2-carbonyl chloride (64 mg, 0.41 mmol, as prepared in Example 9, step (c)) was allowed to react with A- (4-methyl-piperazin-l-yl)-2-(4-methyl-thiophen-3-yl)-phenylamine (80 mg, 0.27 mmol, as prepared in the previous step) in the presence of DIEA (0.10 mL, 0.59 mmol) to afford 25.8 mg (24 %) of the title compound as a yellow solid.
- the resulting 5-cyano-furan-2-carbonyl chloride was placed under high vacuum for 2-3 min and then immediately placed under Ar, cooled to 0 °C in an ice bath, and treated with the aniline solution produced above followed by 141 ⁇ L (0.808 mmol) of ⁇ N-diisopropylethylamine (DIEA).
- DIEA ⁇ N-diisopropylethylamine
- step (b) The procedure of Example 9, step (b) was followed using 75.0 mg (0.250 mmol) l-(3- bromo-4-nitro-phenyl)-4-methyl-piperazine (as prepared in Example 9, step (a)), 136 mg (0.999 mmol) 2-fluorophenylboronic acid, 26.8 mg (0.0232 mmol) of tetrakis(txiphenylphosphine)palladium (0) and 400 ⁇ L (0.799 mmol) of 2.0 M aq Na 2 C ⁇ 3 in DME except the mixture was heated for 22 h.
- step (c) The procedure of Example 9, step (c) was followed using 93.2 mg (0.225 mmol based on 76 % purity) of l-(2'-fluoro-6-nitro-biphenyl-3-yl)-4-methyl- ⁇ iperazine (as prepared in the previous step), 46 mg of 10 % palladium on carbon, 37.0 mg (0.270 mmol) of 5-cyanofuran-2-carboxylic acid (as prepared in Example 1), 35.3 ⁇ L (0.405 mmol) of oxalyl chloride, 5.0 ⁇ L of anh DMF, and 94.1 ⁇ L (0.540 mmol) of DIEA.
- step (a) l-[3-(3,6-Dihydro-2H-pyran-4-yl)-4-nitro-phenyl]-4-methyl-piperazine l-(3-Bromo-4-nitro-phenyl)-4-meihyl-piperazine (as prepared in Example 9, step (a)) (225.1 mg, 0.79 mmol), K 2 CO 3 (310.9 mg, 2.25 mmol) and 4-(4,4,5,5-tetramethyl- [l,3,2]dioxaborolan-2-yl)-3,6-dihydro-2H-pyran (Murata, M., et al, Synthesis, 778, (2000)) (157 mg, 0.75 mmol) in dioxane (5 mL) was heated at 80 0 C overnight under Ar.
- the title compound was prepared from 4-cyano-l-(2-trimethylsilanyl-ethoxymethyl)- lH-imidazole-2-carboxylate potassium salt (as prepared in Example 3, step (d)) and 4- [4-amino-3 -(4-methyl-cyclohex- 1 -enyl)-phenyl] -piperidine- 1 -carboxylic acid tert- butyl ester (prepared according to the procedure in Example 13, step (d), substituting 4-methyl-l-cyclohex-l-enyl boronic acid for cyclohex-1-enyl boronic acid) according to the procedure for Example 14: 1 H-NMR (400 MHz, CD 3 OD): ⁇ 8.18 (d, IH), 8.04 (s, IH), 7.22 (dd, IH), 7.12 (d, IH), 5.80 (m, IH), 3.54.
- the title compound was prepared from 4 ⁇ cyano ⁇ l-(2-trimethylsilanyl-ethoxymethyl)- lH-imidazole-2-carboxylate potassium salt (as prepared in Example 3, step (d)) and 4-(4-amino-3-cyclopent-l-enyl-phenyl)-piperidine-l-carboxylic acid tert-butyl ester (prepared according to the procedure in Example 13, step (d), substituting cyclopenten-1-yl boronic acid for cyclohex-1-enyl boronic acid) according to the procedure for Example 14.
- This compound was prepared according to the procedure in Example 21 from 4- cyano- lH-imidazole-2-carboxylic acid [2-(4-methyl-cyclohex- 1 -enyl)-4-piperidin-4- yl-phenyl]-amide (as prepared in Example 17) and pyridine-2-carbaldehyde.
- This compound was prepared from 4-cyano-lH-imidazole-2-carboxylic acid (2- cyclopent-l-enyl-4-piperidin-4-yl-phenyl)-amide TFA salt (as prepared in Example 18) and 1 -methyl- lH-imidazole-2-carbaldehyde according to the procedure in Example 21.
- reaction was diluted with 3 mL of H 2 O and the title compound was purified by RP- HPLC (C18), eluting with 30-50 % CH 3 CN in 0.1 % TFAZH 2 O over 9 min to give 50 mg (75 %) of a white solid.
- the title compound was prepared from 4-cyano-lH-imidazole-2-carboxylic acid (2- cyclohex-l-enyl-4-piperidin-4-yl-phenyl)-amide TFA salt (as prepared in Example 14, step Qo)), and hydroxy-acetaldehyde according to the procedure in Example 21.
- Example 14 step (b)), NEt 3 (24 ⁇ L, 0.16 mmol), acrylonitrile (12 ⁇ L, 0.18 mmol), 0.1 mL MeOH and 1.0 mL of 1,2-dichloroethane and stirred for 1 h at 80 0 C.
- the reaction was concentrated and the title compound was purified by RP- ⁇ PLC (C 18), eluting with 30-50 % CH 3 CN in 0.1 % TFAZH 2 O over 12 min to give 83 mg (95 %) of a white solid.
- reaction was diluted with 2 mL of H 2 O and the title compound was purified by RP-HPLC (C 18), eluting with 30-50 % CH 3 CN in 0.1 % TFAZH 2 O over 9 min to give 22 mg (70 %) of a white solid.
- the title compound was prepared from 4-cyano-lH-imidazole-2-carboxylic acid (2- cyclohex-l-enyl-4-piperidin-4-yl-phenyl)-amide TFA salt (as prepared in Example 14, step (b)), according to the procedure in Example 29 using pyridin-3-yl-acetic acid.
- the title compound was prepared from 4-cyano-lH-imidazole-2-carboxylic acid (2- cyclohex-l-enyl-4-piperidin-4-yl-phenyl)-amide TFA salt (as prepared in Example 14, step (b)), according to the procedure in Example 29 using pyridin-4-yl-acetic acid.
- the title compound was prepared from 4-cyano-lH-imidazole-2-carboxylic acid (2- cyclohex-l-enyl-4-piperidin-4-yl-phenyl)-amide TFA salt (as prepared in Example 14, step (b)), according to the procedure in Example 29 using (1-methyl-l ⁇ -imidazol- 4-yl)-acetic acid.
- the title compound was prepared from 4-cyano-lH-imidazole-2-carboxylic acid (2- cyclohex-l-enyl-4-piperidin-4-yl-phenyl)-amide TFA salt (as prepared in Example 14, step (b)), according to the procedure in Example 29 using (1 -methyl- IH- imidazol-4-yl)-acetic acid.
- N-bromosuccinimide (137 mg, 0.77 mmol) in 5 mL of DCM under Ar.
- the mixture was warmed to RT and stirred for 1 h under Ar.
- EtOAc washed with H 2 O (2 x 20 mL), brine (20 mL) and dried (Na 2 SO 4 ).
- Example 38a HPLC purification of Example 38a also afforded a small amount of 4-cyano-lH- imidazole-2-carboxylic acid ⁇ 2-cyclohex-l-enyl-4-[l-(2-methylamino-acetyl)- piperidin-4-yl]-phenyl ⁇ -amide.
- PdCl 2 dppf (0.16 g, 0.22 mmol), KOAc (2.18 g, 22.2 mmol), 4,4,5,5,4', 4 ⁇ 5',5'- octamethyl-[2,2']bi[[l,3,2]dioxaborolanyl] (2.07 g, 8.13 mmol), and dppf (0.12 g, 0.22 mmol) were placed in a round-bottomed flask, and the flask was flushed with Ar.
- the title compound was prepared by the Suzuki coupling procedure of Example 35, step (b) using 4-nitrophenylboronic acid (167 mg, 1.00 mmol) and 4- trifluoromethanesulf onyloxy-3 ,6-dihydro-2H-pyridine- 1 -carboxylic acid tert-butyl ester (as prepared in Example 13, step (a), 295 mg, 1.00 mmol).
- Silica gel chromatography (10 % EtOAc in hexanes) afforded the title compound (273 mg, 90 %) as an oil.
- Example 46 A-Cyano-lH-imidazole-l-carboxylic acid [4-(l-acetyl-piperidin-4-yl)-2-( 1,2,5,6- tetrahydro-pyridin-3-yl)-phenyl] -amide trifluoroacetic acid salt
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|---|---|---|---|---|
| US20070004660A1 (en) * | 2005-06-10 | 2007-01-04 | Baumann Christian A | Synergistic Modulation of Flt3 Kinase Using Alkylquinolines and Alkylquinazolines |
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| BRPI0611965A2 (en) | 2009-11-10 |
| US20060281788A1 (en) | 2006-12-14 |
| WO2006138155A1 (en) | 2006-12-28 |
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